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1 gezelter 3302 %% This BibTeX bibliography file was created using BibDesk.
2     %% http://bibdesk.sourceforge.net/
3 tim 2746
4 gezelter 3302
5     %% Created for Dan Gezelter at 2008-01-08 17:00:16 -0500
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9    
10    
11    
12     @article{hess:209,
13     Author = {Berk Hess},
14     Date-Added = {2008-01-08 16:41:06 -0500},
15     Date-Modified = {2008-01-08 16:41:06 -0500},
16     Doi = {10.1063/1.1421362},
17     Journal = {The Journal of Chemical Physics},
18     Keywords = {viscosity; molecular dynamics method; liquid theory; shear flow},
19     Number = {1},
20     Pages = {209-217},
21     Publisher = {AIP},
22     Title = {Determining the shear viscosity of model liquids from molecular dynamics simulations},
23     Url = {http://link.aip.org/link/?JCP/116/209/1},
24     Volume = {116},
25     Year = {2002}}
26    
27     @article{Garcia-de-la-Torre:1997qy,
28     Abstract = {Single-valued hydrodynamic coefficients of a rigid particle can be calculated from existing theories and computer programs for either bead models or ellipsoids. Starting from these coefficients, we review the procedures for the calculation of complex solution properties depending on rotational diffusion, such as the decays of electric birefringence and fluorescence anisotropy. We also describe the calculation of the scattering from factor of bead models. The hydrodynamic coefficients and solution properties can be combined to give universal, shape-dependent functions, which were initially intended for ellipsoidal particles, and are extended here for the most general case. We have implemented all three developments in a new computer program. SOLPRO, for calculation of SOLution PROperties, which can be linked to existing software for bead models or ellipsoids.},
29     Address = {Departamento de Quimica Fisica Universidad de Murcia, Spain. jgt{\char64}fcu,um.es},
30     Au = {Garcia de la Torre, J and Carrasco, B and Harding, SE},
31     Author = {Garcia de la Torre, J and Carrasco, B and Harding, S E},
32     Da = {19970709},
33     Date-Added = {2008-01-08 15:45:31 -0500},
34     Date-Modified = {2008-01-08 15:46:57 -0500},
35     Dcom = {19970709},
36     Edat = {1997/01/01},
37     Issn = {0175-7571 (Print)},
38     Jid = {8409413},
39     Journal = {Eur Biophys J},
40     Jt = {European biophysics journal : EBJ},
41     Keywords = {Birefringence; Fluorescence Polarization; Humans; Immunoglobulin G/chemistry; Models, Structural; *Protein Conformation; Proteins/*chemistry; Scattering, Radiation; *Software; Ultracentrifugation/methods},
42     Language = {eng},
43     Lr = {20061115},
44     Mhda = {1997/01/01 00:01},
45     Number = {5-6},
46     Own = {NLM},
47     Pages = {361--372},
48     Pl = {GERMANY},
49     Pmid = {9213556},
50     Pst = {ppublish},
51     Pt = {Journal Article; Research Support, Non-U.S. Gov't},
52     Pubm = {Print},
53     Rn = {0 (Immunoglobulin G); 0 (Proteins)},
54     Sb = {IM},
55     So = {Eur Biophys J. 1997;25(5-6):361-72. },
56     Stat = {MEDLINE},
57     Title = {SOLPRO: theory and computer program for the prediction of SOLution PROperties of rigid macromolecules and bioparticles.},
58     Volume = {25},
59     Year = {1997}}
60    
61     @article{Ravichandran:1999fk,
62     Abstract = {Detailed molecular dynamics simulations of the rotational and the translational motions of Gay-Berne ellipsoids in a sea of Lennard-Jones spheres have been carried out. It is found that while the translational motion of an ellipsoid is isotropic at low density, it becomes increasingly anisotropic with density until the ratio of the parallel to the perpendicular diffusion coefficients becomes nearly equal to the value of the aspect ratio at high density. The latter is in agreement with the prediction of Navier-Stokes hydrodynamics with slip boundary condition. The product of the translational diffusion coefficient and the rotational correlation time also attains a hydrodynamic-like density independent behavior only at high density. The reorientational correlation function becomes nonexponential at high density and low temperature where it also develops a slow decay. The perpendicular component of the velocity time correlation function exhibits a clear double minimum, only at high density, which becomes more pronounced as the aspect ratio is increased. (C) 1999 American Institute of Physics. [S0021-9606(99)51440-2].},
63     Author = {Ravichandran, S and Bagchi, B},
64     Date-Added = {2008-01-08 15:24:48 -0500},
65     Date-Modified = {2008-01-08 15:25:41 -0500},
66     Journal = {Journal of Chemical Physics},
67     Pages = {7505-7511},
68     Title = {Anisotropic diffusion of nonspherical molecules in dense liquids: A molecular dynamics simulation of isolated ellipsoids in the sea of spheres},
69     Volume = {111},
70     Year = {1999}}
71    
72     @article{TANG:1993lr,
73     Abstract = {Translational friction coefficients of hard prolate ellipsoids (having aspect ratios of 1-10) have been calculated by solving the linearized Navier-Stokes equations of hydrodynamics, using the method of Faxen's theorem. When the stick boundary condition was used, the present results reproduce the famous work of Lamb. The new information derived from this study arises from the analysis of the friction under the influence of the slip hydrodynamic boundary condition. It was found that the slip friction perpendicular to the long axis of the prolate ellipsoid increases monotonically with aspect ratio, whereas the parallel component of the friction decreases monotonically to an apparent limiting value. The ratio f(perpendicular to)/f(parallel to) of friction coefficients perpendicular and parallel to the long axis of the particle, calculated using slip hydrodynamics, scales roughly as the aspect ratio of the ellipsoid, in accord with the findings from an Enskog (uncorrelated binary collision) kinetic theory of hard ellipsoids and from the estimate derived from molecular dynamics. In contrast, f(perpendicular to)/f(parallel to) derived by means of stick hydrodynamics shows a weak dependence on the aspect ratio and disagrees with kinetic theory and molecular dynamics findings.},
74     Author = {TANG, SA and EVANS, GT},
75     Date-Added = {2008-01-08 15:23:42 -0500},
76     Date-Modified = {2008-01-08 15:24:09 -0500},
77     Journal = {Molecular Physics},
78     Pages = {1443-1457},
79     Title = {A CRITIQUE OF SLIP AND STICK HYDRODYNAMICS FOR ELLIPSOIDAL BODIES},
80     Volume = {80},
81     Year = {1993}}
82    
83     @article{Schmidt:2003kx,
84     Abstract = {Using molecular dynamics computer simulation, we have calculated the velocity autocorrelation function and diffusion constant for a spherical solute in a dense fluid of spherical solvent particles. The size and mass of the solute particle are related in such a way that we can naturally approach the Brownian limit (when the solute becomes much larger and more massive than the solvent particles). We find that as long as the solute radius is interpreted as an effective hydrodynamic radius, the Stokes-Einstein law with slip boundary conditions is satisfied as the Brownian limit is approached (specifically, when the solute is roughly 100 times more massive than the solvent particles). In contrast, the Stokes-Einstein law is not satisfied for a tagged particle of the neat solvent. We also find that in the Brownian limit the amplitude of the long-time tail of the solute's velocity autocorrelation function is in good agreement with theoretical hydrodynamic predictions. When the solvent density is substantially lower than the triple density, the Stokes-Einstein law is no longer satisfied, and the amplitude of the long-time tail is not in good agreement with theoretical predictions, signaling the breakdown of hydrodynamics. (C) 2003 American Institute of Physics.},
85     Author = {Schmidt, JR and Skinner, JL},
86     Date-Added = {2008-01-08 15:12:53 -0500},
87     Date-Modified = {2008-01-08 15:13:21 -0500},
88     Doi = {DOI 10.1063/1.1610442},
89     Journal = {Journal of Chemical Physics},
90     Pages = {8062-8068},
91     Title = {Hydrodynamic boundary conditions, the Stokes-Einstein law, and long-time tails in the Brownian limit},
92     Volume = {119},
93     Year = {2003}}
94    
95     @article{Schmidt:2004fj,
96     Abstract = {Using molecular dynamics computer simulation, we have calculated the velocity autocorrelation function and diffusion constant for a variety of solutes in a dense fluid of spherical solvent particles. We explore the effects of surface roughness of the solute on the resulting hydrodynamic boundary condition as we naturally approach the Brownian limit (when the solute becomes much larger and more massive than the solvent particles). We find that when the solute and solvent interact through a purely repulsive isotropic potential, in the Brownian limit the Stokes-Einstein law is satisfied with slip boundary conditions. However, when surface roughness is introduced through an anisotropic solute-solvent interaction potential, we find that the Stokes-Einstein law is satisfied with stick boundary conditions. In addition, when the attractive strength of a short-range isotropic solute-solvent potential is increased, the solute becomes dressed with solvent particles, making it effectively rough, and so stick boundary conditions are again recovered.},
97     Author = {Schmidt, JR and Skinner, JL},
98     Date-Added = {2008-01-08 15:12:53 -0500},
99     Date-Modified = {2008-01-08 15:13:20 -0500},
100     Doi = {DOI 10.1021/jp037185r},
101     Journal = {Journal of Physical Chemistry B},
102     Pages = {6767-6771},
103     Title = {Brownian motion of a rough sphere and the Stokes-Einstein Law},
104     Volume = {108},
105     Year = {2004}}
106    
107     @article{Klein01,
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109     Date-Added = {2008-01-08 14:58:56 -0500},
110     Date-Modified = {2008-01-08 14:58:56 -0500},
111     Journal = {J. Phys. Chem. B},
112     Pages = {4464-4470},
113     Title = {A Coarse Grain Model for Phospholipid Simulations},
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119     Date-Added = {2008-01-08 14:58:56 -0500},
120     Date-Modified = {2008-01-08 14:58:56 -0500},
121     Journal = cpl,
122     Pages = {8-14},
123     Title = {A Gay-Berne potential for dissimilar biaxial particles},
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125     Year = 1998}
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429     @article{Forester97,
430     Author = {T.~R. Forester and W. Smith and J.~H.~R. Clarke},
431     Date-Added = {2008-01-08 14:58:56 -0500},
432     Date-Modified = {2008-01-08 14:58:57 -0500},
433     Journal = {J. Chem. Soc. - Faraday Transactions},
434     Pages = {613-619},
435     Title = {Antibiotic activity of valinomycin - Molecular dynamics simulations involving the water/membrane interface},
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437     Year = 1997}
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439     @article{Lu97,
440     Author = {J. Lu and J.~A. Szpunar},
441     Date-Added = {2008-01-08 14:58:56 -0500},
442     Date-Modified = {2008-01-08 14:58:57 -0500},
443     Journal = {Phil. Mag. A},
444     Pages = {1057-1066},
445     Title = {Applications of the embedded-atom method to glass formation and crystallization of liquid and glass transition-metal nickel},
446     Volume = {75},
447     Year = {1997}}
448    
449     @inproceedings{Gotze89,
450     Address = {Amsterdam},
451     Author = {W. G{\"{o}}tze},
452     Booktitle = {Liquids, Freezing and Glass Transitions},
453     Date-Added = {2008-01-08 14:58:56 -0500},
454     Date-Modified = {2008-01-08 14:58:57 -0500},
455     Editor = {J.~P. Hansen and D. Levesque and J. Zinn-Justin},
456     Pages = {287-503},
457     Publisher = {North-Holland},
458     Title = {Aspects of Structural Glass Transitions},
459     Volume = {I},
460     Year = 1989}
461    
462     @article{Lewis91,
463     Author = {L.~J. Lewis},
464     Date-Added = {2008-01-08 14:58:56 -0500},
465     Date-Modified = {2008-01-08 14:58:57 -0500},
466     Journal = prb,
467     Pages = {4245-4254},
468     Title = {Atomic dynamics through the glass transition},
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470     Year = 1991}
471    
472     @article{Tartaglino02,
473     Author = {U. Tartaglino and E. Tosatti and D. Passerone and F. Ercolessi},
474     Date-Added = {2008-01-08 14:58:56 -0500},
475     Date-Modified = {2008-01-08 14:58:57 -0500},
476     Journal = prb,
477     Pages = 241406,
478     Title = {Bending strain-driven modification of surface resconstructions: Au(111)},
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481    
482     @article{Klafter96,
483     Author = {J. Klafter and M. Shlesinger and G. Zumofen},
484     Date-Added = {2008-01-08 14:58:56 -0500},
485     Date-Modified = {2008-01-08 14:58:57 -0500},
486     Journal = {Physics Today},
487     Pages = {33-39},
488     Title = {Beyond Brownian Motion},
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490     Year = 1996}
491    
492     @article{Roberts95,
493     Author = {J.~E. Roberts and J. Schnitker},
494     Date-Added = {2008-01-08 14:58:56 -0500},
495     Date-Modified = {2008-01-08 14:58:57 -0500},
496     Journal = {J. Phys. Chem.},
497     Local-Url = {file://localhost/Users/cfennell/Documents/pdf_files/TheoryTechniques/Ewald/Roberts_BoundryConditionsIonWater_95.pdf},
498     Pages = {1322-1331},
499     Title = {Boundary Conditions in Sumulations of Aqueous Ionic Solutions: A Systematic Study},
500     Volume = {99},
501     Year = {1995}}
502    
503     @article{Ayton02,
504     Author = {G. Ayton and G.~A. Voth},
505     Date-Added = {2008-01-08 14:58:56 -0500},
506     Date-Modified = {2008-01-08 14:58:57 -0500},
507     Journal = {Biophys. J.},
508     Pages = {3357-3370},
509     Title = {Bridging Microscopic and Mesoscopic Simulations of Lipid Bilayers},
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511     Year = 2002}
512    
513     @article{ChoiYim97,
514     Author = {H. Choi-Yim and W.~L. Johnson},
515     Date-Added = {2008-01-08 14:58:56 -0500},
516     Date-Modified = {2008-01-08 14:58:57 -0500},
517     Journal = {Appl. Phys. Lett.},
518     Pages = {3808-3810},
519     Title = {Bulk metallic glass matrix composites},
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521     Year = 1997}
522    
523     @article{Rabani97,
524     Author = {E. Rabani and J.~D. Gezelter and B.~J. Berne},
525     Date-Added = {2008-01-08 14:58:56 -0500},
526     Date-Modified = {2008-01-08 14:58:57 -0500},
527     Journal = {J. Chem. Phys.},
528     Pages = {6867-6876},
529     Title = {Calculating the hopping rate for self-diffusion on rough potential energy surfaces: Cage correlations},
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532    
533     @article{Gezelter97,
534     Author = {J.~D. Gezelter and E. Rabani and B.~J. Berne},
535     Date-Added = {2008-01-08 14:58:56 -0500},
536     Date-Modified = {2008-01-08 14:58:57 -0500},
537     Journal = jcp,
538     Pages = 4618,
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541     Year = 1997}
542    
543     @article{Hoover85,
544     Author = {W.~G. Hoover},
545     Date-Added = {2008-01-08 14:58:56 -0500},
546     Date-Modified = {2008-01-08 14:58:57 -0500},
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548     Pages = 1695,
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553     @article{Wigner55,
554     Author = {E.~P. Wigner},
555     Date-Added = {2008-01-08 14:58:56 -0500},
556     Date-Modified = {2008-01-08 14:58:57 -0500},
557     Journal = {Annals of Mathematics},
558     Pages = {548-564},
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562    
563     @article{Katsaras00,
564     Author = {J. Katsaras and S. Tristram-Nagle and Y. Liu and R. L. Headrick and E.Fontes and P. C. Mason and J. F. Nagle},
565     Date-Added = {2008-01-08 14:58:56 -0500},
566     Date-Modified = {2008-01-08 14:58:57 -0500},
567     Journal = pre,
568     Number = 5,
569     Pages = {5668-5677},
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573    
574     @article{NorbertKucerka06012006,
575     Abstract = {X-ray data are presented for the benchmark dipalmitoylphosphatidylcholine lipid bilayer in the most biologically relevant state in which the bilayers are fully hydrated and in the fluid (liquid-crystalline) phase. Form factors F(qz) are obtained from a combination of two sample preparations, oriented stacks of bilayers for qz extending to 0.85 A-1 and unilamellar vesicles for smaller qz. Modeling obtains the electron density profile and values for the area per molecule, for the locations of the component groups, and for the different types of thicknesses of the bilayer, such as the hydrocarbon thickness and the steric thickness.
576     },
577     Author = {Kucerka, Norbert and Tristram-Nagle, Stephanie and Nagle, John F.},
578     Date-Added = {2008-01-08 14:58:56 -0500},
579     Date-Modified = {2008-01-08 14:58:57 -0500},
580     Doi = {10.1529/biophysj.106.086017},
581     Eprint = {http://www.biophysj.org/cgi/reprint/90/11/L83.pdf},
582     Journal = {Biophys. J.},
583     Number = {11},
584     Pages = {L83-85},
585     Title = {{Closer Look at Structure of Fully Hydrated Fluid Phase DPPC Bilayers}},
586     Url = {http://www.biophysj.org/cgi/content/abstract/90/11/L83},
587     Volume = {90},
588     Year = {2006}}
589    
590     @article{deJoannis06,
591     Author = {J. de~Joannis and F.~Y. Jiang and J.~T. Kindt},
592     Date-Added = {2008-01-08 14:58:56 -0500},
593     Date-Modified = {2008-01-08 14:58:57 -0500},
594     Journal = {Langmuir},
595     Pages = {998-1005},
596     Title = {Coarse-Grained Model Simulations of Mixed-Lipid Systems: Composition and Line Tension of a Stabilized Bilayer Edge},
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598     Year = 2006}
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602     Date-Added = {2008-01-08 14:58:56 -0500},
603     Date-Modified = {2008-01-08 14:58:57 -0500},
604     Journal = jcp,
605     Pages = {4693-4694},
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610     @article{Jorgensen83,
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612     Date-Added = {2008-01-08 14:58:56 -0500},
613     Date-Modified = {2008-01-08 14:58:57 -0500},
614     Journal = jcp,
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618     Year = 1983}
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620     @book{Warshel91,
621     Address = {New York},
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623     Date-Added = {2008-01-08 14:58:56 -0500},
624     Date-Modified = {2008-01-08 14:58:57 -0500},
625     Publisher = {Wiley},
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627     Year = 1991}
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631     Date-Added = {2008-01-08 14:58:56 -0500},
632     Date-Modified = {2008-01-08 14:58:57 -0500},
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637     Year = 1976}
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641     Date-Added = {2008-01-08 14:58:56 -0500},
642     Date-Modified = {2008-01-08 14:58:57 -0500},
643     Journal = {Liquid Crystals},
644     Pages = {451-464},
645     Title = {Computer simulation studies of anisotropic systems {XIX}. Mesophases formed by the Gay-Berne model mesogen},
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647     Year = 1990}
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649     @article{Kubica02,
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651     Date-Added = {2008-01-08 14:58:56 -0500},
652     Date-Modified = {2008-01-08 14:58:57 -0500},
653     Journal = {Computers and Chemistry},
654     Pages = {351-356},
655     Title = {Computer Simulation studies on significance of Lipid Polar Head Oreintation},
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659     @article{Seifert97,
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661     Date-Added = {2008-01-08 14:58:56 -0500},
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672     Date-Added = {2008-01-08 14:58:56 -0500},
673     Date-Modified = {2008-01-08 14:58:57 -0500},
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681     @article{Duwez60,
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694     Date-Modified = {2008-01-08 14:58:57 -0500},
695     Journal = prb,
696     Pages = 104102,
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701     @article{Zhu2006,
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703     Date-Added = {2008-01-08 14:58:56 -0500},
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713     Date-Added = {2008-01-08 14:58:56 -0500},
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715     Journal = {Mol. Simul.},
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719     Year = {1992}}
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723     Date-Added = {2008-01-08 14:58:56 -0500},
724     Date-Modified = {2008-01-08 14:58:58 -0500},
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726     Pages = {1328-1331},
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733     Date-Added = {2008-01-08 14:58:56 -0500},
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735     Doi = {10.1103/PhysRevA.38.1005},
736     Journal = {Phys. Rev. A},
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738     Number = {2},
739     Numpages = {13},
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744     Year = {1988}}
745    
746     @article{Monroe95,
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748     Date-Added = {2008-01-08 14:58:56 -0500},
749     Date-Modified = {2008-01-08 14:58:58 -0500},
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758     Date-Added = {2008-01-08 14:58:56 -0500},
759     Date-Modified = {2008-01-08 14:58:58 -0500},
760     Journal = jcp,
761     Number = 6,
762     Pages = {2698-2704},
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767     @article{Parkhurst75b,
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769     Date-Added = {2008-01-08 14:58:56 -0500},
770     Date-Modified = {2008-01-08 14:58:58 -0500},
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772     Number = 6,
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778     @article{Rodgers88,
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786     Year = 1988}
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788     @article{Rodgers90,
789     Author = {G.~J. Rodgers and C. {De Dominicis}},
790     Date-Added = {2008-01-08 14:58:56 -0500},
791     Date-Modified = {2008-01-08 14:58:58 -0500},
792     Journal = {J. Phys. A: Math. Gen.},
793     Pages = {1567-1573},
794     Title = {Density of states of sparse random matrices},
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796     Year = 1990}
797    
798     @article{Ewald21,
799     Author = {P.~P. Ewald},
800     Date-Added = {2008-01-08 14:58:56 -0500},
801     Date-Modified = {2008-01-08 14:58:58 -0500},
802     Journal = {Ann. Physik},
803     Pages = {253-287},
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805     Volume = {64},
806     Year = {1921}}
807    
808     @article{Zwanzig88,
809     Author = {R. Zwanzig},
810     Date-Added = {2008-01-08 14:58:56 -0500},
811     Date-Modified = {2008-01-08 14:58:58 -0500},
812     Journal = {Proc. Natl. Acad. Sci. USA},
813     Pages = 2029,
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819     Author = {B. Madan and T. Keyes and G. Seeley},
820     Date-Added = {2008-01-08 14:58:56 -0500},
821     Date-Modified = {2008-01-08 14:58:58 -0500},
822     Journal = jcp,
823     Pages = {7565-7569},
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827    
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829     Author = {C. Gaukel and H.~R. Schober},
830     Date-Added = {2008-01-08 14:58:56 -0500},
831     Date-Modified = {2008-01-08 14:58:58 -0500},
832     Journal = {Solid State Comm.},
833     Pages = {1-5},
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838     @article{Semmler98,
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840     Date-Added = {2008-01-08 14:58:56 -0500},
841     Date-Modified = {2008-01-08 14:58:58 -0500},
842     Journal = {Langmuir},
843     Pages = {5127-5132},
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849     Author = {E. Rabani and J.~D. Gezelter and B.~J. Berne},
850     Date-Added = {2008-01-08 14:58:56 -0500},
851     Date-Modified = {2008-01-08 14:58:58 -0500},
852     Journal = prl,
853     Pages = {3649},
854     Title = {Direct Observation of Stretched-Exponential Relaxation in Low-Temperature Lennard-Jones Systems Using the Cage Correlation Function},
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856     Year = {1999}}
857    
858     @article{Ngai81,
859     Author = {K.~L. Ngai and F.-S. Liu},
860     Date-Added = {2008-01-08 14:58:56 -0500},
861     Date-Modified = {2008-01-08 14:58:58 -0500},
862     Journal = prb,
863     Pages = {1049-1065},
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869     Address = {Malabar, Florida},
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871     Date-Added = {2008-01-08 14:58:56 -0500},
872     Date-Modified = {2008-01-08 14:58:58 -0500},
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875     Year = 1990}
876    
877     @article{Essmann99,
878     Author = {U. Essmann and M.~L. Berkowitz},
879     Date-Added = {2008-01-08 14:58:56 -0500},
880     Date-Modified = {2008-01-08 14:58:58 -0500},
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882     Pages = {2081-2089},
883     Title = {Dynamical properties of phospholipid bilayers from computer simulation},
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885     Year = 1999}
886    
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888     Author = {F.~H. Stillinger and T.~A. Weber},
889     Date-Added = {2008-01-08 14:58:56 -0500},
890     Date-Modified = {2008-01-08 14:58:58 -0500},
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896     Year = 1983}
897    
898     @article{Hunenberger99b,
899     Author = {P.~H. H\"{u}nenberger and J.~A. McCammon},
900     Date-Added = {2008-01-08 14:58:56 -0500},
901     Date-Modified = {2008-01-08 14:58:58 -0500},
902     Journal = {Biophys. Chem.},
903     Local-Url = {file://localhost/Users/cfennell/Documents/pdf_files/TheoryTechniques/Ewald/McCammon_ArtificialEwaldPeriodicity_99.pdf},
904     Pages = {69-88},
905     Title = {Effect of artificial periodicity in simulations of biomolecules under Ewald boundary conditions: a continuum electrostatics study},
906     Volume = {78},
907     Year = {1999}}
908    
909     @article{Spohr97,
910     Author = {E. Spohr},
911     Date-Added = {2008-01-08 14:58:56 -0500},
912     Date-Modified = {2008-01-08 14:58:58 -0500},
913     Journal = {J. Chem. Phys.},
914     Local-Url = {file://localhost/Users/cfennell/Documents/pdf_files/TheoryTechniques/Ewald/Spohr_2DElectrostatics_97.pdf},
915     Number = {16},
916     Pages = {6342-6348},
917     Title = {Effect of electrostatic boundary conditions and system size on the interfacial properties of water and aqueous solutions},
918     Volume = {107},
919     Year = {1997}}
920    
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922     Author = {S.~J. Marrink and A.~E. Mark},
923     Date-Added = {2008-01-08 14:58:56 -0500},
924     Date-Modified = {2008-01-08 14:58:58 -0500},
925     Journal = {Journal of Physical Chemistry B},
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936     Pages = {2123-2134},
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954     Date-Modified = {2008-01-08 14:58:58 -0500},
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963     Date-Added = {2008-01-08 14:58:56 -0500},
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983     Date-Modified = {2008-01-08 14:58:58 -0500},
984     Journal = jcp,
985     Pages = {457-466},
986     Title = {Electronic dephasing and electron-phonon coupling of aluminum phthalocyanine tetrasulphonate in hyperquenched and annealed glassy films of ethanol and methanol over a broad temperature range},
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1025     Journal = {J. Chem. Phys.},
1026     Keywords = {Empty Keywords},
1027     Local-Url = {file://localhost/Users/cfennell/Documents/pdf_files/TheoryTechniques/Ewald/Heyes_CoulombChargeSpreading_81.pdf},
1028     Number = {3},
1029     Pages = {1924-1929},
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1036     Date-Added = {2008-01-08 14:58:56 -0500},
1037     Date-Modified = {2008-01-08 14:58:58 -0500},
1038     Journal = jpcB,
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1046     Date-Added = {2008-01-08 14:58:56 -0500},
1047     Date-Modified = {2008-01-08 14:58:58 -0500},
1048     Journal = {Curr. Opin. Struct. Biol.},
1049     Local-Url = {file://localhost/Users/cfennell/Documents/pdf_files/TheoryTechniques/Tobias_ElectrostaticsCalculations_01.pdf},
1050     Pages = {253-261},
1051     Title = {Electrostatics calculations: recent methodological advances and applications to membranes},
1052     Volume = {11},
1053     Year = {2001}}
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1055     @article{Arnold02,
1056     Author = {A. Arnold and J. {de Joannis} and C. Holm},
1057     Date-Added = {2008-01-08 14:58:56 -0500},
1058     Date-Modified = {2008-01-08 14:58:58 -0500},
1059     Doi = {10.1063/1.149195},
1060     Journal = {J. Chem. Phys.},
1061     Local-Url = {file://localhost/Users/cfennell/Documents/pdf_files/TheoryTechniques/Ewald/Arnold_SlabElectrostatics_02.pdf},
1062     Number = {6},
1063     Pages = {2496-2502},
1064     Title = {Electrostatics in periodic slab geometries. I},
1065     Volume = {117},
1066     Year = {2002}}
1067    
1068     @article{deJoannis02,
1069     Author = {J. {de Joannis} and A. Arnold and C. Holm},
1070     Date-Added = {2008-01-08 14:58:56 -0500},
1071     Date-Modified = {2008-01-08 14:58:58 -0500},
1072     Doi = {10.1063/1.149195},
1073     Journal = {J. Chem. Phys.},
1074     Local-Url = {file://localhost/Users/cfennell/Documents/pdf_files/TheoryTechniques/Ewald/Joannis_SlabElectrostatics_02.pdf},
1075     Number = {6},
1076     Pages = {2503-2512},
1077     Title = {Electrostatics in periodic slab geometries. II},
1078     Volume = {117},
1079     Year = {2002}}
1080    
1081     @article{Barenco95,
1082     Author = {A. Barenco and C.~H. Bennett and R. Cleve and D.~P. DiVincenzo and N. Margolus and P. Shor and T. Sleator and J.~A. Smolin and H. Weinfurter},
1083     Date-Added = {2008-01-08 14:58:56 -0500},
1084     Date-Modified = {2008-01-08 14:58:58 -0500},
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1093     Date-Added = {2008-01-08 14:58:56 -0500},
1094     Date-Modified = {2008-01-08 14:58:58 -0500},
1095     Journal = pre,
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1103     Date-Added = {2008-01-08 14:58:56 -0500},
1104     Date-Modified = {2008-01-08 14:58:58 -0500},
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1115     Date-Modified = {2008-01-08 14:58:58 -0500},
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1118     Pages = 7983,
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1125     Date-Added = {2008-01-08 14:58:56 -0500},
1126     Date-Modified = {2008-01-08 14:58:58 -0500},
1127     Journal = {J. Phys. Chem. B},
1128     Local-Url = {file://localhost/Users/cfennell/Documents/pdf_files/TheoryTechniques/WolfApplications/Zahn_enhancedWolfH2O_02.pdf},
1129     Number = {41},
1130     Pages = {10725-10732},
1131     Title = {Enhancement of the Wolf Damped Coulomb Potential: Static, Dynamic, and Dielectric Properties of Liquid Water from Molecular Simulation},
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1133     Year = {2002}}
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1158     Date-Added = {2008-01-08 14:58:56 -0500},
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1179     Date-Modified = {2008-01-08 14:58:59 -0500},
1180     Journal = {J. Chem. Phys.},
1181     Local-Url = {file://localhost/Users/cfennell/Documents/pdf_files/TheoryTechniques/Ewald/Hunenberger_IonSolutionEwaldArtifacts_99.pdf},
1182     Number = {4},
1183     Pages = {1856-1872},
1184     Title = {Ewald artifacts in computer simulations of ionic solvation and ion -- ion interaction: A continuum electrostatics study},
1185     Volume = {110},
1186     Year = {1999}}
1187    
1188     @article{Rhee89,
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1190     Date-Added = {2008-01-08 14:58:56 -0500},
1191     Date-Modified = {2008-01-08 14:58:59 -0500},
1192     Journal = {Phys. Rev. B},
1193     Local-Url = {file://localhost/Users/cfennell/Documents/pdf_files/TheoryTechniques/Ewald/Rhee_finiteDimensionEwald_88.pdf},
1194     Number = {1},
1195     Pages = {36-42},
1196     Title = {Ewald methods in molecular dynamics for systems of finite extent in one of three dimensions},
1197     Volume = {40},
1198     Year = {1989}}
1199    
1200     @article{Yeh99,
1201     Author = {I.-C. Yeh and M.~L. Berkowitz},
1202     Date-Added = {2008-01-08 14:58:56 -0500},
1203     Date-Modified = {2008-01-08 14:58:59 -0500},
1204     Journal = {J. Chem. Phys.},
1205     Local-Url = {file://localhost/Users/cfennell/Documents/pdf_files/TheoryTechniques/Ewald/Yeh_SlabCorrectionEwald_99.pdf},
1206     Number = {7},
1207     Pages = {3155-3162},
1208     Title = {Ewald summation for systems with slab geometry},
1209     Volume = {111},
1210     Year = {1999}}
1211    
1212     @article{Brodka04,
1213     Author = {A. Br\'{o}dka},
1214     Date-Added = {2008-01-08 14:58:56 -0500},
1215     Date-Modified = {2008-01-08 14:58:59 -0500},
1216     Doi = {10.1016/j.cplett.2004.10.086},
1217     Journal = {Chem. Phys. Lett.},
1218     Local-Url = {file://localhost/Users/cfennell/Documents/pdf_files/TheoryTechniques/Ewald/Brodka_PointDipoleSlabEwald_04.pdf},
1219     Pages = {62-67},
1220     Title = {Ewald summation method with electrostatic layer correction for interactions of point dipoles in slab geometry},
1221     Volume = {400},
1222     Year = {2004}}
1223    
1224     @article{Chuang98,
1225     Author = {I. Chuang and N. Gershenfeld and M. Kubinec},
1226     Date-Added = {2008-01-08 14:58:56 -0500},
1227     Date-Modified = {2008-01-08 14:58:59 -0500},
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1234     @article{Banerjee02,
1235     Author = {Srilekha Banerjee},
1236     Date-Added = {2008-01-08 14:58:56 -0500},
1237     Date-Modified = {2008-01-08 14:58:59 -0500},
1238     Journal = {Physica A},
1239     Pages = {89-100},
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1246     Date-Added = {2008-01-08 14:58:56 -0500},
1247     Date-Modified = {2008-01-08 14:58:59 -0500},
1248     Journal = {Physica A},
1249     Pages = {89-100},
1250     Title = {Exploring the ripple phase of biomembranes},
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1256     Date-Added = {2008-01-08 14:58:56 -0500},
1257     Date-Modified = {2008-01-08 14:58:59 -0500},
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1277     Date-Added = {2008-01-08 14:58:56 -0500},
1278     Date-Modified = {2008-01-08 14:58:59 -0500},
1279     Journal = pre,
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1286     @article{Benninger:2005qy,
1287     Abstract = {The plasma membrane of cells is an ordered environment, giving rise to anisotropic orientation and restricted motion of molecules and proteins residing in the membrane. At the same time as being an organized matrix of defined structure, the cell membrane is heterogeneous and dynamic. Here we present a method where we use fluorescence imaging of linear dichroism to measure the orientation of molecules relative to the cell membrane. By detecting linear dichroism as well as fluorescence anisotropy, the orientation parameters are separated from dynamic properties such as rotational diffusion and homo energy transfer (energy migration). The sensitivity of the technique is enhanced by using two-photon excitation for higher photo-selection compared to single photon excitation. We show here that we can accurately image lipid organization in whole cell membranes and in delicate structures such as membrane nanotubes connecting two cells. The speed of our wide-field imaging system makes it possible to image changes in orientation and anisotropy occurring on a subsecond timescale. This is demonstrated by time-lapse studies showing that cholesterol depletion rapidly disrupts the orientation of a fluorophore located within the hydrophobic region of the cell membrane but not of a surface bound probe. This is consistent with cholesterol having an important role in stabilizing and ordering the lipid tails within the plasma membrane. },
1288     Annote = {10.1529/biophysj.104.050096},
1289     Author = {Benninger, Richard K. P. and Onfelt, Bjorn and Neil, Mark A. A. and Davis, Daniel M. and French, Paul M. W.},
1290     Date-Added = {2008-01-08 14:58:56 -0500},
1291     Date-Modified = {2008-01-08 14:58:59 -0500},
1292     Journal = {Biophysical Journal},
1293     Journal1 = {Biophys. J.},
1294     Number = {1},
1295     Pages = {609--622},
1296     Title = {Fluorescence Imaging of Two-Photon Linear Dichroism: Cholesterol Depletion Disrupts Molecular Orientation in Cell Membranes},
1297     Ty = {JOUR},
1298     Url = {http://www.biophysj.org/cgi/content/abstract/88/1/609},
1299     Volume = {88},
1300     Year = {2005}}
1301    
1302     @inbook{Blumen86,
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1305     Chapter = {Reactions in Disordered Media Modelled by Fractals},
1306     Date-Added = {2008-01-08 14:58:56 -0500},
1307     Date-Modified = {2008-01-08 14:58:59 -0500},
1308     Editor = {Luciano Peitronero and E. Tosatti},
1309     Pages = 399,
1310     Publisher = {North-Holland},
1311     Series = {International Symposium on Fractals in Physics},
1312     Title = {Fractals in Physics},
1313     Year = 1986}
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1317     Date-Added = {2008-01-08 14:58:56 -0500},
1318     Date-Modified = {2008-01-08 14:58:59 -0500},
1319     Journal = prl,
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1322     Title = {Frustration Effect in Quantum Spin Systems},
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1324     Year = 1979}
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1328     Date-Added = {2008-01-08 14:58:56 -0500},
1329     Date-Modified = {2008-01-08 14:58:59 -0500},
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1338     Date-Added = {2008-01-08 14:58:56 -0500},
1339     Date-Modified = {2008-01-08 14:58:59 -0500},
1340     Journal = jcp,
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1348     Date-Added = {2008-01-08 14:58:56 -0500},
1349     Date-Modified = {2008-01-08 14:58:59 -0500},
1350     Eid = 157802,
1351     Journal = {Physical Review Letters},
1352     Number = 15,
1353     Numpages = 4,
1354     Pages = 157802,
1355     Publisher = {APS},
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1359    
1360     @article{Dzugutov92,
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1362     Date-Added = {2008-01-08 14:58:56 -0500},
1363     Date-Modified = {2008-01-08 14:58:59 -0500},
1364     Journal = pra,
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1368     Year = 1992}
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1371     Author = {A.~R. Calderbank and P.~W. Shor},
1372     Date-Added = {2008-01-08 14:58:56 -0500},
1373     Date-Modified = {2008-01-08 14:58:59 -0500},
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2343     Date-Added = {2008-01-08 14:58:56 -0500},
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2346     Pages = {271-277},
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2546     @article{NorbertKucerka04012005,
2547     Abstract = {Quantitative structures of the fully hydrated fluid phases of dimyristoylphosphatidylcholine (DMPC) and dilauroylphosphatidylcholine (DLPC) were obtained at 30{degrees}C. Data for the relative form factors F(qz) for DMPC were obtained using a combination of four methods. 1), Volumetric data provided F(0). 2), Diffuse x-ray scattering from oriented stacks of bilayers provided relative form factors |F(qz)| for high qz, 0.22 < qz < 0.8 A-1. 3), X-ray scattering from extruded unilamellar vesicles with diameter 600 A provided |F(qz)| for low qz, 0.1 < qz < 0.3 A-1. 4), Previous measurements using a liquid crystallographic x-ray method provided |F(2{pi}h/D)| for h = 1 and 2 for a range of nearly fully hydrated D-spacings. The data from method 4 overlap and validate the new unilamellar vesicles data for DMPC, so method 4 is not required for DLPC or future studies. We used hybrid electron density models to obtain structural results from these form factors. Comparison of the model electron density profiles with that of gel phase DMPC provides areas per lipid A, 60.6 {+/-} 0.5 A2 for DMPC and 63.2 {+/-} 0.5 A2 for DLPC. Constraints on the model provided by volume measurements and component volumes obtained from simulations put the electron density profiles {rho}(z) and the corresponding form factors F(qz) on absolute scales. Various thicknesses, such as the hydrophobic thickness and the steric thickness, are obtained and compared to literature values.
2548     },
2549     Author = {Kucerka, Norbert and Liu, Yufeng and Chu, Nanjun and Petrache, Horia I. and Tristram-Nagle, Stephanie and Nagle, John F.},
2550     Date-Added = {2008-01-08 14:58:56 -0500},
2551     Date-Modified = {2008-01-08 14:59:02 -0500},
2552     Doi = {10.1529/biophysj.104.056606},
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2555     Number = {4},
2556     Pages = {2626-2637},
2557     Title = {{Structure of Fully Hydrated Fluid Phase DMPC and DLPC Lipid Bilayers Using X-Ray Scattering from Oriented Multilamellar Arrays and from Unilamellar Vesicles}},
2558     Url = {http://www.biophysj.org/cgi/content/abstract/88/4/2626},
2559     Volume = {88},
2560     Year = {2005}}
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2762     Local-Url = {file://localhost/Users/cfennell/Documents/pdf_files/WaterSimulation/Andrea_LongRangeForcesInWater_83.pdf},
2763     Number = {9},
2764     Pages = {4576-4584},
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2779    
2780     @article{Buchner92,
2781     Author = {M. Buchner, B.~M. Ladanyi and R.~M. Stratt},
2782     Date-Added = {2008-01-08 14:58:56 -0500},
2783     Date-Modified = {2008-01-08 14:59:02 -0500},
2784     Journal = jcp,
2785     Pages = {8522-8535},
2786     Title = {The short-time dynamics of molecular liquids. Instantaneous-normal-mode theory},
2787     Volume = 97,
2788     Year = 1992}
2789    
2790     @article{Liu96a,
2791     Author = {Y. Liu and T. Ichiye},
2792     Date-Added = {2008-01-08 14:58:56 -0500},
2793     Date-Modified = {2008-01-08 14:59:02 -0500},
2794     Journal = {Chem. Phys. Lett.},
2795     Pages = {334-340},
2796     Title = {The static dielectric constant of the soft sticky dipole model of liquid water: $\mbox{Monte Carlo}$ simulation},
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2800     @article{Holm05,
2801     Author = {C. Holm and J.-J. Weis},
2802     Date-Added = {2008-01-08 14:58:56 -0500},
2803     Date-Modified = {2008-01-08 14:59:02 -0500},
2804     Journal = {Curr. Opin. Colloid Interface Sci.},
2805     Pages = {133-140},
2806     Title = {The structure of ferrofluids: A status report},
2807     Volume = 10,
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2810     @article{Luttinger46,
2811     Author = {J. M. Luttinger and L. Tisza},
2812     Date-Added = {2008-01-08 14:58:56 -0500},
2813     Date-Modified = {2008-01-08 14:59:02 -0500},
2814     Journal = {Physical Review},
2815     Number = 11,
2816     Pages = {954-964},
2817     Title = {Theory of Dipole Interaction in Crystals},
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2819     Year = 1946}
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2821     @article{Toulouse1977,
2822     Author = {G. Toulouse},
2823     Date-Added = {2008-01-08 14:58:56 -0500},
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2825     Journal = {Commun. Phys.},
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2828     Title = {Theory of Frustration Effect in Spin-Glasses. I.},
2829     Volume = 2,
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2831    
2832     @article{Carlson87,
2833     Author = {J.~M. Carlson and J.~P. Sethna},
2834     Date-Added = {2008-01-08 14:58:56 -0500},
2835     Date-Modified = {2008-01-08 14:59:02 -0500},
2836     Journal = pra,
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2843     @article{Lubensky93,
2844     Author = {T. C. Lubensky and F. C. MacKintosh},
2845     Date-Added = {2008-01-08 14:58:56 -0500},
2846     Date-Modified = {2008-01-08 14:59:02 -0500},
2847     Journal = prl,
2848     Number = 10,
2849     Pages = {1565-1568},
2850     Title = {Theory of ``Ripple'' Phases of Lipid Bilayers},
2851     Volume = 71,
2852     Year = 1993}
2853    
2854     @book{Hansen86,
2855     Address = {London},
2856     Author = {J.~P. Hansen and I.~R. McDonald},
2857     Chapter = 7,
2858     Date-Added = {2008-01-08 14:58:56 -0500},
2859     Date-Modified = {2008-01-08 14:59:02 -0500},
2860     Pages = {199-206},
2861     Publisher = {Academic Press},
2862     Title = {Theory of Simple Liquids},
2863     Year = 1986}
2864    
2865     @article{Marder84,
2866     Author = {M. Marder and H.~L. Frisch and J.~S. Langer and H.~M. McConnell},
2867     Date-Added = {2008-01-08 14:58:56 -0500},
2868     Date-Modified = {2008-01-08 14:59:02 -0500},
2869     Journal = pnas,
2870     Pages = {6559-6561},
2871     Title = {Theory of the intermediate rippled phase of phospholipid bilayers},
2872     Volume = 81,
2873     Year = 1984}
2874    
2875     @book{Tobias90,
2876     Address = {Tucson},
2877     Author = {Sheila Tobias},
2878     Date-Added = {2008-01-08 14:58:56 -0500},
2879     Date-Modified = {2008-01-08 14:59:02 -0500},
2880     Publisher = {Research Corp.},
2881     Title = {They're not Dumb. They're Different: Stalking the Second Tier},
2882     Year = 1990}
2883    
2884     @article{Tao91,
2885     Author = {R. Tao and J. M. Sun},
2886     Date-Added = {2008-01-08 14:58:56 -0500},
2887     Date-Modified = {2008-01-08 14:59:02 -0500},
2888     Journal = prl,
2889     Number = 3,
2890     Pages = {398-401},
2891     Title = {Three-Dimensional Structure of Induced Electrorheological Solid},
2892     Volume = 67,
2893     Year = 1991}
2894    
2895     @article{Bratko95,
2896     Author = {L. Blum and F. Vericat and D. Bratko},
2897     Date-Added = {2008-01-08 14:58:56 -0500},
2898     Date-Modified = {2008-01-08 14:59:02 -0500},
2899     Journal = jcp,
2900     Number = 3,
2901     Pages = {1461-1462},
2902     Title = {Towards an analytical model of water: The octupolar model},
2903     Volume = 102,
2904     Year = 1995}
2905    
2906     @article{Martin98,
2907     Author = {M. Martin and J.~I. Siepmann},
2908     Date-Added = {2008-01-08 14:58:56 -0500},
2909     Date-Modified = {2008-01-08 14:59:02 -0500},
2910     Journal = jpcB,
2911     Pages = {2569-2577},
2912     Title = {Transferable Potentials for Phase Equilibria. 1. United-Atom Description of n-Alkanes},
2913     Volume = 102,
2914     Year = 1998}
2915    
2916     @article{Misbah98,
2917     Author = {C. Misbah and J. Duplat and B. Houchmandzadeh},
2918     Date-Added = {2008-01-08 14:58:56 -0500},
2919     Date-Modified = {2008-01-08 14:59:02 -0500},
2920     Journal = prl,
2921     Number = 20,
2922     Pages = {4598-4601},
2923     Title = {Transition to Ripple Phases in Hydrated Amphiphiles},
2924     Volume = 80,
2925     Year = 1998}
2926    
2927     @article{Alemany98,
2928     Author = {M.~M.~G. Alemany and C. Rey and L.~J. Gallego},
2929     Date-Added = {2008-01-08 14:58:56 -0500},
2930     Date-Modified = {2008-01-08 14:59:02 -0500},
2931     Journal = jcp,
2932     Pages = {5175-5176},
2933     Title = {Transport coefficients of liquid transition metals: A computer simulation study using the embedded atom model},
2934     Volume = 109,
2935     Year = 1998}
2936    
2937     @article{Born12,
2938     Author = {M. Born and Th. Von~Karman},
2939     Date-Added = {2008-01-08 14:58:56 -0500},
2940     Date-Modified = {2008-01-08 14:59:02 -0500},
2941     Journal = {Physik Z.},
2942     Number = {297-309},
2943     Title = {Uber Schwingungen in Raumgittern},
2944     Volume = 13,
2945     Year = 1912}
2946    
2947     @incollection{Angell85,
2948     Address = {Springfield, VA},
2949     Author = {C.~A. Angell},
2950     Booktitle = {Relaxations in Complex Systems},
2951     Date-Added = {2008-01-08 14:58:56 -0500},
2952     Date-Modified = {2008-01-08 14:59:03 -0500},
2953     Editor = {K.~Ngai and G.~B. Wright},
2954     Pages = 1,
2955     Publisher = {National Technical Information Service, U.S. Department of Commerce},
2956     Title = {unknown},
2957     Year = 1985}
2958    
2959     @article{Ribeiro98,
2960     Author = {M.~C.~C. Ribeiro and P.~A. Madden},
2961     Date-Added = {2008-01-08 14:58:56 -0500},
2962     Date-Modified = {2008-01-08 14:59:03 -0500},
2963     Journal = jcp,
2964     Pages = {3256-3263},
2965     Title = {Unstable Modes in Ionic Melts},
2966     Volume = 108,
2967     Year = 1998}
2968    
2969     @article{Mutz1991,
2970     Author = {Mutz, M. and Bensimon, D. and Brienne, M. J.},
2971     Date-Added = {2008-01-08 14:58:56 -0500},
2972     Date-Modified = {2008-01-08 14:59:03 -0500},
2973     Doi = {10.1103/PhysRevLett.67.923},
2974     Journal = {Phys. Rev. Lett.},
2975     Month = {Aug},
2976     Number = {7},
2977     Numpages = {3},
2978     Pages = {923--926},
2979     Publisher = {American Physical Society},
2980     Title = {Wrinkling transition in partially polymerized vesicles},
2981     Volume = {67},
2982     Year = {1991}}
2983    
2984     @article{Wendt78,
2985     Author = {H. Wendt and F.~F. Abraham},
2986     Date-Added = {2008-01-08 14:58:56 -0500},
2987     Date-Modified = {2008-01-08 14:59:03 -0500},
2988     Journal = prl,
2989     Pages = 1244,
2990     Volume = 41,
2991     Year = 1978}
2992    
2993     @unpublished{Truhlar00,
2994     Author = {D.~G. Truhlar and A. Kohen},
2995     Date-Added = {2008-01-08 14:58:56 -0500},
2996     Date-Modified = {2008-01-08 14:59:03 -0500},
2997     Note = {private correspondence},
2998     Year = {2000}}
2999    
3000     @article{Dwyer1977,
3001     Author = {D.~J. Dwyer and G.~W. Simmons and R.~P. Wei},
3002     Date-Added = {2008-01-08 14:58:56 -0500},
3003     Date-Modified = {2008-01-08 14:59:03 -0500},
3004     Journal = {Surf. Sci.},
3005     Pages = 617,
3006     Volume = 64,
3007     Year = 1977}
3008    
3009     @article{Macritche78,
3010     Author = {F. MacRitche},
3011     Date-Added = {2008-01-08 14:58:56 -0500},
3012     Date-Modified = {2008-01-08 14:59:03 -0500},
3013     Journal = {Adv. Protein Chem.},
3014     Pages = 283,
3015     Volume = 32,
3016     Year = 1978}
3017    
3018     @article{Feder80,
3019     Author = {J. Feder},
3020     Date-Added = {2008-01-08 14:58:56 -0500},
3021     Date-Modified = {2008-01-08 14:59:03 -0500},
3022     Journal = {J. Theor. Biol.},
3023     Pages = 237,
3024     Volume = 87,
3025     Year = 1980}
3026    
3027     @article{Ramsden93,
3028     Author = {J.~J. Ramsden},
3029     Date-Added = {2008-01-08 14:58:56 -0500},
3030     Date-Modified = {2008-01-08 14:59:03 -0500},
3031     Journal = prl,
3032     Pages = 295,
3033     Volume = 71,
3034     Year = 1993}
3035    
3036     @article{Egelhoff89,
3037     Author = {W.~F. Egelhoff and I. Jacob},
3038     Date-Added = {2008-01-08 14:58:56 -0500},
3039     Date-Modified = {2008-01-08 14:59:03 -0500},
3040     Journal = prl,
3041     Pages = 921,
3042     Volume = 62,
3043     Year = 1989}
3044    
3045     @article{Dobson1987,
3046     Author = {B.~W. Dobson},
3047     Date-Added = {2008-01-08 14:58:56 -0500},
3048     Date-Modified = {2008-01-08 14:59:03 -0500},
3049     Journal = prb,
3050     Pages = 1068,
3051     Volume = 36,
3052     Year = 1987}
3053    
3054     @article{Davis:1969uq,
3055     Abstract = { Exact solutions of the Stokes equations are derived for the case of two unequal spheres slowly rotating or translating perpendicular to their line of centers in a quiescent, unbounded viscous fluid, following Wakiya[16]. Numerical results are presented for the force and torque coefficients for size ratios from 1[middle dot]0 to 10[middle dot]0, and separations down to 0[middle dot]001 times the radius of the smaller.},
3056     Author = {Davis, M. H.},
3057     Date-Added = {2008-01-08 14:57:14 -0500},
3058     Date-Modified = {2008-01-08 14:57:14 -0500},
3059     Journal = {Chemical Engineering Science},
3060     Number = {12},
3061     Pages = {1769--1776},
3062     Title = {The slow translation and rotation of two unequal spheres in a viscous fluid},
3063     Ty = {JOUR},
3064     Url = {http://www.sciencedirect.com/science/article/B6TFK-445H8BM-84/2/b34951283900cdde792ec1309ec51565},
3065     Volume = {24},
3066     Year = {1969}}
3067    
3068     @article{Stimson:1926qy,
3069     Author = {Stimson, M and Jeffery, GB},
3070     Date-Added = {2008-01-08 14:51:23 -0500},
3071     Date-Modified = {2008-01-08 14:51:35 -0500},
3072     Journal = {Proceedings of the Royal Society of London Series A-Containing Papers of a Mathematical and Physical Character},
3073     Pages = {110-116},
3074     Title = {The motion of two spheres in a viscous fluid},
3075     Volume = {111},
3076     Year = {1926}}
3077    
3078     @article{Orlandi:2006fk,
3079     Abstract = {Liquid crystal phases formed by bent-shaped (or {\tt{}"{}}banana{\tt{}"{}}) molecules are currently of great interest. Here we investigate by Monte Carlo computer simulations the phases formed by rigid banana molecules modeled combining three Gay-Berne sites and containing either one central or two lateral and transversal dipoles. We show that changing the dipole position and orientation has a profound effect on the mesophase stability and molecular organization. In particular, we find a uniaxial nematic phase only for off-center dipolar models and tilted phases only for the one with terminal dipoles.},
3080     Address = {Dipartimento di Chimica Fisica e Inorganica, and INSTM, Universita di Bologna, Viale Risorgimento 4, 40136 Bologna, Italy.},
3081     Au = {Orlandi, S and Berardi, R and Steltzer, J and Zannoni, C},
3082     Author = {Orlandi, Silvia and Berardi, Roberto and Steltzer, Joachim and Zannoni, Claudio},
3083     Da = {20060407},
3084     Date-Added = {2008-01-08 14:47:56 -0500},
3085     Date-Modified = {2008-01-08 14:48:06 -0500},
3086     Dcom = {20070727},
3087     Doi = {10.1063/1.2176622},
3088     Edat = {2006/04/08 09:00},
3089     Issn = {0021-9606 (Print)},
3090     Jid = {0375360},
3091     Journal = {J Chem Phys},
3092     Jt = {The Journal of chemical physics},
3093     Language = {eng},
3094     Mhda = {2006/04/08 09:01},
3095     Number = {12},
3096     Own = {NLM},
3097     Pages = {124907},
3098     Pl = {United States},
3099     Pmid = {16599725},
3100     Pst = {ppublish},
3101     Pt = {Journal Article},
3102     Pubm = {Print},
3103     So = {J Chem Phys. 2006 Mar 28;124(12):124907.},
3104     Stat = {PubMed-not-MEDLINE},
3105     Title = {A Monte Carlo study of the mesophases formed by polar bent-shaped molecules.},
3106     Volume = {124},
3107     Year = {2006}}
3108    
3109     @article{sun:031602,
3110     Author = {Xiuquan Sun and J. Daniel Gezelter},
3111     Date-Added = {2008-01-08 14:42:33 -0500},
3112     Date-Modified = {2008-01-08 14:42:33 -0500},
3113     Doi = {10.1103/PhysRevE.75.031602},
3114     Eid = {031602},
3115     Journal = {Physical Review E (Statistical, Nonlinear, and Soft Matter Physics)},
3116     Keywords = {lattice theory; membranes},
3117     Number = {3},
3118     Numpages = {7},
3119     Pages = {031602},
3120     Publisher = {APS},
3121     Title = {Spontaneous corrugation of dipolar membranes},
3122     Url = {http://link.aps.org/abstract/PRE/v75/e031602},
3123     Volume = {75},
3124     Year = {2007}}
3125    
3126     @article{Ortega:2007lr,
3127     Abstract = {The equivalent radius for any solution property is the radius of a spherical particle having the same value of solution property as that of the macromolecule under consideration. Equivalent radii for different properties present a dependence on size and shape that are more similar than the values of the properties themselves. Furthermore, the ratios of equivalent radii of two properties depend on the conformation (shape or flexibility), but not on the absolute sizes. We define equivalent radii and their ratios, and describe their evaluation for some common models of rigid and flexible macromolecules. Using radii and ratios, we have devised procedures to fit macromolecular models to experimental properties, allowing the determination of the model parameters. Using these quantities, we can construct target functions for an equilibrated, unbiased optimization. The procedures, which have been implemented in public-domain computer programs, are illustrated for rigid, globular proteins, and the rodlike tobacco mosaic virus, and for semiflexible, wormlike heparin molecules.},
3128     Address = {Departamento de Quimica Fisica, Facultad de Quimica, Universidad de Murcia, 30071 Murcia, Spain.},
3129     Au = {Ortega, A and Garcia de la Torre, J},
3130     Author = {Ortega, A and Garcia de la Torre, J},
3131     Da = {20070813},
3132     Date-Added = {2008-01-08 14:38:03 -0500},
3133     Date-Modified = {2008-01-08 14:38:49 -0500},
3134     Dcom = {20071017},
3135     Dep = {20070724},
3136     Doi = {10.1021/bm700473f},
3137     Edat = {2007/07/25 09:00},
3138     Issn = {1525-7797 (Print)},
3139     Jid = {100892849},
3140     Journal = {Biomacromolecules},
3141     Jt = {Biomacromolecules},
3142     Keywords = {Computer Simulation; Heparin/chemistry; Macromolecular Substances/*chemistry; *Models, Chemical; *Models, Molecular; Molecular Conformation; Particle Size; Protein Conformation; Proteins/chemistry; Software; Solutions},
3143     Language = {eng},
3144     Mhda = {2007/10/18 09:00},
3145     Number = {8},
3146     Own = {NLM},
3147     Pages = {2464--2475},
3148     Phst = {2007/07/24 {$[$}aheadofprint{$]$}},
3149     Pl = {United States},
3150     Pmid = {17645309},
3151     Pst = {ppublish},
3152     Pt = {Journal Article; Research Support, Non-U.S. Gov't},
3153     Pubm = {Print-Electronic},
3154     Rn = {0 (Macromolecular Substances); 0 (Proteins); 0 (Solutions); 9005-49-6 (Heparin)},
3155     Sb = {IM},
3156     So = {Biomacromolecules. 2007 Aug;8(8):2464-75. Epub 2007 Jul 24.},
3157     Stat = {MEDLINE},
3158     Title = {Equivalent radii and ratios of radii from solution properties as indicators of macromolecular conformation, shape, and flexibility.},
3159     Volume = {8},
3160     Year = {2007}}
3161    
3162     @article{Torre2003,
3163     Abstract = {While the prediction of hydrodynamic properties of rigid particles
3164 tim 2999 is nowadays feasible using simple and efficient computer programs,
3165     the calculation of such properties and, in general, the dynamic
3166     behavior of flexible macromolecules has not reached a similar situation.
3167     Although the theories are available, usually the computational work
3168     is done using solutions specific for each problem. We intend to
3169     develop computer programs that would greatly facilitate the task
3170     of predicting solution behavior of flexible macromolecules. In this
3171     paper, we first present an overview of the two approaches that are
3172     most practical: the Monte Carlo rigid-body treatment, and the Brownian
3173     dynamics simulation technique. The Monte Carlo procedure is based
3174     on the calculation of properties for instantaneous conformations
3175     of the macromolecule that are regarded as if they were instantaneously
3176     rigid. We describe how a Monte Carlo program can be interfaced to
3177     the programs in the HYDRO suite for rigid particles, and provide
3178     an example of such calculation, for a hypothetical particle: a protein
3179     with two domains connected by a flexible linker. We also describe
3180     briefly the essentials of Brownian dynamics, and propose a general
3181     mechanical model that includes several kinds of intramolecular interactions,
3182     such as bending, internal rotation, excluded volume effects, etc.
3183     We provide an example of the application of this methodology to
3184     the dynamics of a semiflexible, wormlike DNA.},
3185 gezelter 3302 Annote = {724XK Times Cited:6 Cited References Count:64},
3186     Author = {J. G. {de la Torre} and H. E. Sanchez and A. Ortega and J. G. Hernandez and M. X. Fernandes and F. G. Diaz and M. C. L. Martinez},
3187     Issn = {0175-7571},
3188     Journal = {European Biophysics Journal with Biophysics Letters},
3189     Month = {Aug},
3190     Number = {5},
3191     Pages = {477-486},
3192     Title = {Calculation of the solution properties of flexible macromolecules: methods and applications},
3193     Uri = {<Go to ISI>://000185513400011},
3194     Volume = {32},
3195     Year = {2003}}
3196 tim 2746
3197 gezelter 3302 @article{Alakent2005,
3198     Abstract = {Time series analysis tools are employed on the principal modes obtained
3199 tim 2999 from the C-alpha trajectories from two independent molecular-dynamics
3200     simulations of alpha-amylase inhibitor (tendamistat). Fluctuations
3201     inside an energy minimum (intraminimum motions), transitions between
3202     minima (interminimum motions), and relaxations in different hierarchical
3203     energy levels are investigated and compared with those encountered
3204     in vacuum by using different sampling window sizes and intervals.
3205     The low-frequency low-indexed mode relationship, established in
3206     vacuum, is also encountered in water, which shows the reliability
3207     of the important dynamics information offered by principal components
3208     analysis in water. It has been shown that examining a short data
3209     collection period (100 ps) may result in a high population of overdamped
3210     modes, while some of the low-frequency oscillations (< 10 cm(-1))
3211     can be captured in water by using a longer data collection period
3212     (1200 ps). Simultaneous analysis of short and long sampling window
3213     sizes gives the following picture of the effect of water on protein
3214     dynamics. Water makes the protein lose its memory: future conformations
3215     are less dependent on previous conformations due to the lowering
3216     of energy barriers in hierarchical levels of the energy landscape.
3217     In short-time dynamics (< 10 ps), damping factors extracted from
3218     time series model parameters are lowered. For tendamistat, the friction
3219     coefficient in the Langevin equation is found to be around 40-60
3220     cm(-1) for the low-indexed modes, compatible with literature. The
3221     fact that water has increased the friction and that on the other
3222     hand has lubrication effect at first sight contradicts. However,
3223     this comes about because water enhances the transitions between
3224     minima and forces the protein to reduce its already inherent inability
3225     to maintain oscillations observed in vacuum. Some of the frequencies
3226     lower than 10 cm(-1) are found to be overdamped, while those higher
3227     than 20 cm(-1) are slightly increased. As for the long-time dynamics
3228     in water, it is found that random-walk motion is maintained for
3229     approximately 200 ps (about five times of that in vacuum) in the
3230     low-indexed modes, showing the lowering of energy barriers between
3231     the higher-level minima.},
3232 gezelter 3302 Annote = {973OH Times Cited:1 Cited References Count:33},
3233     Author = {B. Alakent and M. C. Camurdan and P. Doruker},
3234     Issn = {0021-9606},
3235     Journal = {Journal of Chemical Physics},
3236     Month = {Oct 8},
3237     Number = {14},
3238     Pages = {-},
3239     Title = {Hierarchical structure of the energy landscape of proteins revisited by time series analysis. II. Investigation of explicit solvent effects},
3240     Uri = {<Go to ISI>://000232532000064},
3241     Volume = {123},
3242     Year = {2005}}
3243 tim 2746
3244 gezelter 3302 @book{Alexander1987,
3245     Address = {New York},
3246     Author = {C. Alexander},
3247     Publisher = {Oxford University Press},
3248     Title = {A Pattern Language: Towns, Buildings, Construction},
3249     Year = {1987}}
3250 tim 2999
3251 gezelter 3302 @book{Allen1987,
3252     Address = {New York},
3253     Author = {M.~P. Allen and D.~J. Tildesley},
3254     Publisher = {Oxford University Press},
3255     Title = {Computer Simulations of Liquids},
3256     Year = {1987}}
3257 tim 2999
3258 gezelter 3302 @article{Allison1991,
3259     Abstract = {A Brownian dynamics algorithm is developed to simulate dynamics experiments
3260 tim 2999 of rigid macromolecules. It is applied to polarized dynamic light
3261     scattering from rodlike sturctures and from a model of a DNA fragment
3262     (762 base pairs). A number of rod cases are examined in which the
3263     translational anisotropy is increased form zero to a large value.
3264     Simulated first cumulants as well as amplitudes and lifetimes of
3265     the dynamic form factor are compared with predictions of analytic
3266     theories and found to be in very good agreement with them. For DNA
3267     fragments 762 base pairs in length or longer, translational anisotropy
3268     does not contribute significantly to dynamic light scattering. In
3269     a comparison of rigid and flexible simulations on semistiff models
3270     of this fragment, it is shown directly that flexing contributes
3271     to the faster decay processes probed by light scattering and that
3272     the flexible model studies are in good agreement with experiment.},
3273 gezelter 3302 Annote = {Eu814 Times Cited:8 Cited References Count:32},
3274     Author = {S. A. Allison},
3275     Issn = {0024-9297},
3276     Journal = {Macromolecules},
3277     Month = {Jan 21},
3278     Number = {2},
3279     Pages = {530-536},
3280     Title = {A Brownian Dynamics Algorithm for Arbitrary Rigid Bodies - Application to Polarized Dynamic Light-Scattering},
3281     Uri = {<Go to ISI>://A1991EU81400029},
3282     Volume = {24},
3283     Year = {1991}}
3284 tim 2746
3285 gezelter 3302 @article{Andersen1983,
3286     Annote = {Rq238 Times Cited:559 Cited References Count:14},
3287     Author = {H. C. Andersen},
3288     Issn = {0021-9991},
3289     Journal = {Journal of Computational Physics},
3290     Number = {1},
3291     Pages = {24-34},
3292     Title = {Rattle - a Velocity Version of the Shake Algorithm for Molecular-Dynamics Calculations},
3293     Uri = {<Go to ISI>://A1983RQ23800002},
3294     Volume = {52},
3295     Year = {1983}}
3296 tim 2999
3297 gezelter 3302 @article{Auerbach2005,
3298     Abstract = {Acetylcholine receptor channels (AChRs) are proteins that switch between
3299 tim 2999 stable #closed# and #open# conformations. In patch clamp recordings,
3300     diliganded AChR gating appears to be a simple, two-state reaction.
3301     However, mutagenesis studies indicate that during gating dozens
3302     of residues across the protein move asynchronously and are organized
3303     into rigid body gating domains (#blocks#). Moreover, there is an
3304     upper limit to the apparent channel opening rate constant. These
3305     observations suggest that the gating reaction has a broad, corrugated
3306     transition state region, with the maximum opening rate reflecting,
3307     in part, the mean first-passage time across this ensemble. Simulations
3308     reveal that a flat, isotropic energy profile for the transition
3309     state can account for many of the essential features of AChR gating.
3310     With this mechanism, concerted, local structural transitions that
3311     occur on the broad transition state ensemble give rise to fractional
3312     measures of reaction progress (Phi values) determined by rate-equilibrium
3313     free energy relationship analysis. The results suggest that the
3314     coarse-grained AChR gating conformational change propagates through
3315     the protein with dynamics that are governed by the Brownian motion
3316     of individual gating blocks.},
3317 gezelter 3302 Annote = {895QF Times Cited:9 Cited References Count:33},
3318     Author = {A. Auerbach},
3319     Issn = {0027-8424},
3320     Journal = {Proceedings of the National Academy of Sciences of the United States of America},
3321     Month = {Feb 1},
3322     Number = {5},
3323     Pages = {1408-1412},
3324     Title = {Gating of acetylcholine receptor channels: Brownian motion across a broad transition state},
3325     Uri = {<Go to ISI>://000226877300030},
3326     Volume = {102},
3327     Year = {2005}}
3328 tim 2746
3329 gezelter 3302 @article{Baber1995,
3330     Abstract = {The effect of the general anesthetics halothane, enflurane, and isoflurane
3331 tim 2999 on hydrocarbon chain packing in palmitoyl(d(31))oleoylphosphatidylcholine
3332     membranes in the liquid crystalline phase was investigated using
3333     H-2 NMR. Upon the addition of the anesthetics, the first five methylene
3334     units near the interface generally show a very small increase in
3335     segmental order, while segments deeper within the bilayer show a
3336     small decrease in segmental order. From the H-2 NMR results, the
3337     chain length for the perdeuterated palmitoyl chain in the absence
3338     of anesthetic was found to be 12.35 Angstrom. Upon the addition
3339     of halothane enflurane, or isoflurane, the acyl chain undergoes
3340     slight contractions of 0.11, 0.20, or 0.16 Angstrom, respectively,
3341     at 50 mol % anesthetic. A simple model was used to estimate the
3342     relative amounts of anesthetic located near the interface and deeper
3343     in the bilayer hydrocarbon region, and only a slight preference
3344     for an interfacial location was observed. Intermolecular H-1-H-1
3345     nuclear Overhauser effects (NOEs) were measured between phospholipid
3346     and halothane protons. These NOEs are consistent with the intramembrane
3347     location of the anesthetics suggested by the H-2 NMR data. In addition,
3348     the NOE data indicate that anesthetics prefer the interfacial and
3349     hydrocarbon regions of the membrane and are not found in high concentrations
3350     in the phospholipid headgroup.},
3351 gezelter 3302 Annote = {Qz716 Times Cited:38 Cited References Count:37},
3352     Author = {J. Baber and J. F. Ellena and D. S. Cafiso},
3353     Issn = {0006-2960},
3354     Journal = {Biochemistry},
3355     Month = {May 16},
3356     Number = {19},
3357     Pages = {6533-6539},
3358     Title = {Distribution of General-Anesthetics in Phospholipid-Bilayers Determined Using H-2 Nmr and H-1-H-1 Noe Spectroscopy},
3359     Uri = {<Go to ISI>://A1995QZ71600035},
3360     Volume = {34},
3361     Year = {1995}}
3362 tim 2999
3363 gezelter 3302 @article{Banerjee2004,
3364     Abstract = {Based on a coherent state representation of noise operator and an
3365 tim 2999 ensemble averaging procedure using Wigner canonical thermal distribution
3366     for harmonic oscillators, a generalized quantum Langevin equation
3367     has been recently developed [Phys. Rev. E 65, 021109 (2002); 66,
3368     051106 (2002)] to derive the equations of motion for probability
3369     distribution functions in c-number phase-space. We extend the treatment
3370     to explore several systematic approximation schemes for the solutions
3371     of the Langevin equation for nonlinear potentials for a wide range
3372     of noise correlation, strength and temperature down to the vacuum
3373     limit. The method is exemplified by an analytic application to harmonic
3374     oscillator for arbitrary memory kernel and with the help of a numerical
3375     calculation of barrier crossing, in a cubic potential to demonstrate
3376     the quantum Kramers' turnover and the quantum Arrhenius plot. (C)
3377     2004 American Institute of Physics.},
3378 gezelter 3302 Annote = {816YY Times Cited:8 Cited References Count:35},
3379     Author = {D. Banerjee and B. C. Bag and S. K. Banik and D. S. Ray},
3380     Issn = {0021-9606},
3381     Journal = {Journal of Chemical Physics},
3382     Month = {May 15},
3383     Number = {19},
3384     Pages = {8960-8972},
3385     Title = {Solution of quantum Langevin equation: Approximations, theoretical and numerical aspects},
3386     Uri = {<Go to ISI>://000221146400009},
3387     Volume = {120},
3388     Year = {2004}}
3389 tim 2746
3390 gezelter 3302 @article{Barojas1973,
3391     Author = {J. Barojas and D. Levesque},
3392     Journal = {Phys. Rev. A},
3393     Pages = {1092-1105},
3394     Title = {Simulation of Diatomic Homonuclear Liquids},
3395     Volume = {7},
3396     Year = {1973}}
3397 tim 2999
3398 gezelter 3302 @article{Barth1998,
3399     Abstract = {We present an efficient new method termed LN for propagating biomolecular
3400 tim 2999 dynamics according to the Langevin equation that arose fortuitously
3401     upon analysis of the range of harmonic validity of our normal-mode
3402     scheme LIN. LN combines force linearization with force splitting
3403     techniques and disposes of LIN'S computationally intensive minimization
3404     (anharmonic correction) component. Unlike the competitive multiple-timestepping
3405     (MTS) schemes today-formulated to be symplectic and time-reversible-LN
3406     merges the slow and fast forces via extrapolation rather than impulses;
3407     the Langevin heat bath prevents systematic energy drifts. This combination
3408     succeeds in achieving more significant speedups than these MTS methods
3409     which are Limited by resonance artifacts to an outer timestep less
3410     than some integer multiple of half the period of the fastest motion
3411     (around 4-5 fs for biomolecules). We show that LN achieves very
3412     good agreement with small-timestep solutions of the Langevin equation
3413     in terms of thermodynamics (energy means and variances), geometry,
3414     and dynamics (spectral densities) for two proteins in vacuum and
3415     a large water system. Significantly, the frequency of updating the
3416     slow forces extends to 48 fs or more, resulting in speedup factors
3417     exceeding 10. The implementation of LN in any program that employs
3418     force-splitting computations is straightforward, with only partial
3419     second-derivative information required, as well as sparse Hessian/vector
3420     multiplication routines. The linearization part of LN could even
3421     be replaced by direct evaluation of the fast components. The application
3422     of LN to biomolecular dynamics is well suited for configurational
3423     sampling, thermodynamic, and structural questions. (C) 1998 American
3424     Institute of Physics.},
3425 gezelter 3302 Annote = {105HH Times Cited:29 Cited References Count:49},
3426     Author = {E. Barth and T. Schlick},
3427     Issn = {0021-9606},
3428     Journal = {Journal of Chemical Physics},
3429     Month = {Aug 1},
3430     Number = {5},
3431     Pages = {1617-1632},
3432     Title = {Overcoming stability limitations in biomolecular dynamics. I. Combining force splitting via extrapolation with Langevin dynamics in LN},
3433     Uri = {<Go to ISI>://000075066300006},
3434     Volume = {109},
3435     Year = {1998}}
3436 tim 2746
3437 gezelter 3302 @article{Batcho2001,
3438     Abstract = {We present an analysis for a simple two-component harmonic oscillator
3439 tim 2999 that compares the use of position-Verlet to velocity-Verlet for
3440     multiple-time step integration. The numerical stability analysis
3441     based on the impulse-Verlet splitting shows that position-Verlet
3442     has enhanced stability, in terms of the largest allowable time step,
3443     for cases where an ample separation of time scales exists. Numerical
3444     investigations confirm the advantages of the position-Verlet scheme
3445     when used for the fastest time scales of the system. Applications
3446     to a biomolecule. a solvated protein, for both Newtonian and Langevin
3447     dynamics echo these trends over large outer time-step regimes. (C)
3448     2001 American Institute of Physics.},
3449 gezelter 3302 Annote = {469KV Times Cited:6 Cited References Count:30},
3450     Author = {P. F. Batcho and T. Schlick},
3451     Issn = {0021-9606},
3452     Journal = {Journal of Chemical Physics},
3453     Month = {Sep 1},
3454     Number = {9},
3455     Pages = {4019-4029},
3456     Title = {Special stability advantages of position-Verlet over velocity-Verlet in multiple-time step integration},
3457     Uri = {<Go to ISI>://000170813800005},
3458     Volume = {115},
3459     Year = {2001}}
3460 tim 2746
3461 gezelter 3302 @article{Bates2005,
3462     Abstract = {Inspired by recent claims that compounds composed of V-shaped molecules
3463 tim 2999 can exhibit the elusive biaxial nematic phase, we have developed
3464     a generic simulation model for such systems. This contains the features
3465     of the molecule that are essential to its liquid crystal behavior,
3466     namely the anisotropies of the two arms and the angle between them.
3467     The behavior of the model has been investigated using Monte Carlo
3468     simulations for a wide range of these structural parameters. This
3469     allows us to establish the relationship between the V-shaped molecule
3470     and its ability to form a biaxial nematic phase. Of particular importance
3471     are the criteria of geometry and the relative anisotropy necessary
3472     for the system to exhibit a Landau point, at which the biaxial nematic
3473     is formed directly from the isotropic phase. The simulations have
3474     also been used to determine the orientational order parameters for
3475     a selection of molecular axes. These are especially important because
3476     they reveal the phase symmetry and are connected to the experimental
3477     determination of this. The simulation results show that, whereas
3478     some positions are extremely sensitive to the phase biaxiality,
3479     others are totally blind to this.},
3480 gezelter 3302 Annote = {Part 1 988LQ Times Cited:0 Cited References Count:38},
3481     Author = {M. A. Bates and G. R. Luckhurst},
3482     Issn = {1539-3755},
3483     Journal = {Physical Review E},
3484     Month = {Nov},
3485     Number = {5},
3486     Pages = {-},
3487     Title = {Biaxial nematic phases and V-shaped molecules: A Monte Carlo simulation study},
3488     Uri = {<Go to ISI>://000233603100030},
3489     Volume = {72},
3490     Year = {2005}}
3491 tim 2999
3492 gezelter 3302 @article{Beard2003,
3493     Abstract = {We introduce an unbiased protocol for performing rotational moves
3494 tim 2999 in rigid-body dynamics simulations. This approach - based on the
3495     analytic solution for the rotational equations of motion for an
3496     orthogonal coordinate system at constant angular velocity - removes
3497     deficiencies that have been largely ignored in Brownian dynamics
3498     simulations, namely errors for finite rotations that result from
3499     applying the noncommuting rotational matrices in an arbitrary order.
3500     Our algorithm should thus replace standard approaches to rotate
3501     local coordinate frames in Langevin and Brownian dynamics simulations.},
3502 gezelter 3302 Annote = {736UA Times Cited:0 Cited References Count:11},
3503     Author = {D. A. Beard and T. Schlick},
3504     Issn = {0006-3495},
3505     Journal = {Biophysical Journal},
3506     Month = {Nov 1},
3507     Number = {5},
3508     Pages = {2973-2976},
3509     Title = {Unbiased rotational moves for rigid-body dynamics},
3510     Uri = {<Go to ISI>://000186190500018},
3511     Volume = {85},
3512     Year = {2003}}
3513 tim 2746
3514 gezelter 3302 @article{Beloborodov1998,
3515     Abstract = {Using the Green function of arbitrary rigid Brownian diffusion (Goldstein,
3516 tim 2999 Biopolymers 33, 409-436, 1993), it was analytically shown that coupling
3517     between translation and rotation diffusion degrees of freedom does
3518     not affect the correlation functions relevant to the NMR intramolecular
3519     relaxation. It follows that spectral densities usually used for
3520     the anisotropic rotation diffusion (Woessner, J. Chem. Phys. 37,
3521     647-654, 1962) can be regarded as exact in respect to the rotation-translation
3522     coupling for the spin system connected with a rigid body. (C) 1998
3523     Academic Press.},
3524 gezelter 3302 Annote = {Zu605 Times Cited:2 Cited References Count:6},
3525     Author = {I. S. Beloborodov and V. Y. Orekhov and A. S. Arseniev},
3526     Issn = {1090-7807},
3527     Journal = {Journal of Magnetic Resonance},
3528     Month = {Jun},
3529     Number = {2},
3530     Pages = {328-329},
3531     Title = {Effect of coupling between rotational and translational Brownian motions on NMR spin relaxation: Consideration using green function of rigid body diffusion},
3532     Uri = {<Go to ISI>://000074214800017},
3533     Volume = {132},
3534     Year = {1998}}
3535 tim 2746
3536 gezelter 3302 @article{Berardi1996,
3537     Abstract = {We demonstrate that the overall molecular dipole organization in a
3538 tim 2999 smectic liquid crystal formed of polar molecules can be strongly
3539     influenced by the position of the dipole in the molecule. We study
3540     by large scale Monte Carlo simulations systems of attractive-repulsive
3541     ''Gay-Berne'' elongated ellipsoids with an axial dipole at the center
3542     or near the end of the molecule and we show that monolayer smectic
3543     liquid crystals and modulated antiferroelectric bilayer stripe domains
3544     similar to the experimentally observed ''antiphase'' structures
3545     are obtained in the two cases.},
3546 gezelter 3302 Annote = {Vn637 Times Cited:49 Cited References Count:26},
3547     Author = {R. Berardi and S. Orlandi and C. Zannoni},
3548     Issn = {0009-2614},
3549     Journal = {Chemical Physics Letters},
3550     Month = {Oct 18},
3551     Number = {3},
3552     Pages = {357-362},
3553     Title = {Antiphase structures in polar smectic liquid crystals and their molecular origin},
3554     Uri = {<Go to ISI>://A1996VN63700023},
3555     Volume = {261},
3556     Year = {1996}}
3557 tim 2746
3558 gezelter 3302 @article{Berkov2005,
3559     Abstract = {In this paper a detailed numerical study (in frames of the Slonczewski
3560 tim 2999 formalism) of magnetization oscillations driven by a spin-polarized
3561     current through a thin elliptical nanoelement is presented. We show
3562     that a sophisticated micromagnetic model, where a polycrystalline
3563     structure of a nanoelement is taken into account, can explain qualitatively
3564     all most important features of the magnetization oscillation spectra
3565     recently observed experimentally [S. I. Kiselev , Nature 425, 380
3566     (2003)], namely, existence of several equidistant spectral bands,
3567     sharp onset and abrupt disappearance of magnetization oscillations
3568     with increasing current, absence of the out-of-plane regime predicted
3569     by a macrospin model, and the relation between frequencies of so-called
3570     small-angle and quasichaotic oscillations. However, a quantitative
3571     agreement with experimental results (especially concerning the frequency
3572     of quasichaotic oscillations) could not be achieved in the region
3573     of reasonable parameter values, indicating that further model refinement
3574     is necessary for a complete understanding of the spin-driven magnetization
3575     precession even in this relatively simple experimental situation.},
3576 gezelter 3302 Annote = {969IT Times Cited:2 Cited References Count:55},
3577     Author = {D. V. Berkov and N. L. Gorn},
3578     Issn = {1098-0121},
3579     Journal = {Physical Review B},
3580     Month = {Sep},
3581     Number = {9},
3582     Pages = {-},
3583     Title = {Magnetization precession due to a spin-polarized current in a thin nanoelement: Numerical simulation study},
3584     Uri = {<Go to ISI>://000232228500058},
3585     Volume = {72},
3586     Year = {2005}}
3587 tim 2746
3588 gezelter 3302 @article{Berkov2005a,
3589     Abstract = {Numerical simulations of fast remagnetization processes using stochastic
3590 tim 2999 dynamics are widely used to study various magnetic systems. In this
3591     paper, we first address several crucial methodological problems
3592     of such simulations: (i) the influence of finite-element discretization
3593     on simulated dynamics, (ii) choice between Ito and Stratonovich
3594     stochastic calculi by the solution of micromagnetic stochastic equations
3595     of motion and (iii) non-trivial correlation properties of the random
3596     (thermal) field. Next, we discuss several examples to demonstrate
3597     the great potential of the Langevin dynamics for studying fast remagnetization
3598     processes in technically relevant applications: we present numerical
3599     analysis of equilibrium magnon spectra in patterned structures,
3600     study thermal noise effects on the magnetization dynamics of nanoelements
3601     in pulsed fields and show some results for a remagnetization dynamics
3602     induced by a spin-polarized current. (c) 2004 Elsevier B.V. All
3603     rights reserved.},
3604 gezelter 3302 Annote = {Part 1 Sp. Iss. SI 922KU Times Cited:2 Cited References Count:25},
3605     Author = {D. V. Berkov and N. L. Gorn},
3606     Issn = {0304-8853},
3607     Journal = {Journal of Magnetism and Magnetic Materials},
3608     Month = {Apr},
3609     Pages = {442-448},
3610     Title = {Stochastic dynamic simulations of fast remagnetization processes: recent advances and applications},
3611     Uri = {<Go to ISI>://000228837600109},
3612     Volume = {290},
3613     Year = {2005}}
3614 tim 2999
3615 gezelter 3302 @article{Berkov2002,
3616     Abstract = {We report on recent progress achieved by the development of numerical
3617 tim 2999 methods based on the stochastic (Langevin) dynamics applied to systems
3618     of interacting magnetic nanoparticles. The method enables direct
3619     simulations of the trajectories of magnetic moments taking into
3620     account (i) all relevant interactions, (ii) precession dynamics,
3621     and (iii) temperature fluctuations included via the random (thermal)
3622     field. We present several novel results obtained using new methods
3623     developed for the solution of the Langevin equations. In particular,
3624     we have investigated magnetic nanodots and disordered granular systems
3625     of single-domain magnetic particles. For the first case we have
3626     calculated the spectrum and the spatial distribution of spin excitations.
3627     For the second system the complex ac susceptibility chi(omega, T)
3628     for various particle concentrations and particle anisotropies were
3629     computed and compared with numerous experimental results.},
3630 gezelter 3302 Annote = {526TF Times Cited:4 Cited References Count:37},
3631     Author = {D. V. Berkov and N. L. Gorn and P. Gornert},
3632     Issn = {0031-8965},
3633     Journal = {Physica Status Solidi a-Applied Research},
3634     Month = {Feb 16},
3635     Number = {2},
3636     Pages = {409-421},
3637     Title = {Magnetization dynamics in nanoparticle systems: Numerical simulation using Langevin dynamics},
3638     Uri = {<Go to ISI>://000174145200026},
3639     Volume = {189},
3640     Year = {2002}}
3641 tim 2746
3642 gezelter 3302 @article{Bernal1980,
3643     Author = {J.M. Bernal and J. G. {de la Torre}},
3644     Journal = {Biopolymers},
3645     Pages = {751-766},
3646     Title = {Transport Properties and Hydrodynamic Centers of Rigid Macromolecules with Arbitrary Shape},
3647     Volume = {19},
3648     Year = {1980}}
3649 tim 2746
3650 gezelter 3302 @article{Brenner1967,
3651     Author = {H. Brenner},
3652     Journal = {J. Collid. Int. Sci.},
3653     Pages = {407-436},
3654     Title = {Coupling between the Translational and Rotational Brownian Motions of Rigid Particles of Arbitrary shape},
3655     Volume = {23},
3656     Year = {1967}}
3657 tim 2999
3658 gezelter 3302 @article{Brooks1983,
3659     Annote = {Qp423 Times Cited:6414 Cited References Count:96},
3660     Author = {B. R. Brooks and R. E. Bruccoleri and B. D. Olafson and D. J. States and S. Swaminathan and M. Karplus},
3661     Issn = {0192-8651},
3662     Journal = {Journal of Computational Chemistry},
3663     Number = {2},
3664     Pages = {187-217},
3665     Title = {Charmm - a Program for Macromolecular Energy, Minimization, and Dynamics Calculations},
3666     Uri = {<Go to ISI>://A1983QP42300010},
3667     Volume = {4},
3668     Year = {1983}}
3669 tim 2999
3670 gezelter 3302 @article{Brunger1984,
3671     Annote = {Sm173 Times Cited:143 Cited References Count:22},
3672     Author = {A. Brunger and C. L. Brooks and M. Karplus},
3673     Issn = {0009-2614},
3674     Journal = {Chemical Physics Letters},
3675     Number = {5},
3676     Pages = {495-500},
3677     Title = {Stochastic Boundary-Conditions for Molecular-Dynamics Simulations of St2 Water},
3678     Uri = {<Go to ISI>://A1984SM17300007},
3679     Volume = {105},
3680     Year = {1984}}
3681 tim 2746
3682 gezelter 3302 @article{Budd1999,
3683     Abstract = {This paper examines a synthesis of adaptive mesh methods with the
3684 tim 2999 use of symmetry to study a partial differential equation. In particular,
3685     it considers methods which admit discrete self-similar solutions,
3686     examining the convergence of these to the true self-similar solution
3687     as well as their stability. Special attention is given to the nonlinear
3688     diffusion equation describing flow in a porous medium.},
3689 gezelter 3302 Annote = {199EE Times Cited:4 Cited References Count:14},
3690     Author = {C. J. Budd and G. J. Collins and W. Z. Huang and R. D. Russell},
3691     Issn = {1364-503X},
3692     Journal = {Philosophical Transactions of the Royal Society of London Series a-Mathematical Physical and Engineering Sciences},
3693     Month = {Apr 15},
3694     Number = {1754},
3695     Pages = {1047-1077},
3696     Title = {Self-similar numerical solutions of the porous-medium equation using moving mesh methods},
3697     Uri = {<Go to ISI>://000080466800005},
3698     Volume = {357},
3699     Year = {1999}}
3700 tim 2999
3701 gezelter 3302 @article{Camp1999,
3702     Abstract = {Fluids of hard bent-core molecules have been studied using theory
3703 tim 2999 and computer simulation. The molecules are composed of two hard
3704     spherocylinders, with length-to-breadth ratio L/D, joined by their
3705     ends at an angle 180 degrees - gamma. For L/D = 2 and gamma = 0,10,20
3706     degrees, the simulations show isotropic, nematic, smectic, and solid
3707     phases. For L/D = 2 and gamma = 30 degrees, only isotropic, nematic,
3708     and solid phases are in evidence, which suggests that there is a
3709     nematic-smectic-solid triple point at an angle in the range 20 degrees
3710     < gamma < 30 degrees. In all of the orientationally ordered fluid
3711     phases the order is purely uniaxial. For gamma = 10 degrees and
3712     20 degrees, at the studied densities, the solid is also uniaxially
3713     ordered, whilst for gamma = 30 degrees the solid layers are biaxially
3714     ordered. For L/D = 2 and gamma = 60 degrees and 90 degrees we find
3715     no spontaneous orientational ordering. This is shown to be due to
3716     the interlocking of dimer pairs which precludes alignment. We find
3717     similar results for L/D = 9.5 and gamma = 72 degrees, where an isotropic-biaxial
3718     nematic transition is predicted by Onsager theory. Simulations in
3719     the biaxial nematic phase show it to be at least mechanically stable
3720     with respect to the isotropic phase, however. We have compared the
3721     quasi-exact simulation results in the isotropic phase with the predicted
3722     equations of state from three theories: the virial expansion containing
3723     the second and third virial coefficients; the Parsons-Lee equation
3724     of state; an application of Wertheim's theory of associating fluids
3725     in the limit of infinite attractive association energy. For all
3726     of the molecule elongations and geometries we have simulated, the
3727     Wertheim theory proved to be the most accurate. Interestingly, the
3728     isotropic equation of state is virtually independent of the dimer
3729     bond angle-a feature that is also reflected in the lack of variation
3730     with angle of the calculated second and third virial coefficients.
3731     (C) 1999 American Institute of Physics. [S0021-9606(99)50445-5].},
3732 gezelter 3302 Annote = {255TC Times Cited:24 Cited References Count:38},
3733     Author = {P. J. Camp and M. P. Allen and A. J. Masters},
3734     Issn = {0021-9606},
3735     Journal = {Journal of Chemical Physics},
3736     Month = {Dec 1},
3737     Number = {21},
3738     Pages = {9871-9881},
3739     Title = {Theory and computer simulation of bent-core molecules},
3740     Uri = {<Go to ISI>://000083685400056},
3741     Volume = {111},
3742     Year = {1999}}
3743 tim 2999
3744 gezelter 3302 @article{Care2005,
3745     Abstract = {A review is presented of molecular and mesoscopic computer simulations
3746 tim 2999 of liquid crystalline systems. Molecular simulation approaches applied
3747     to such systems are described, and the key findings for bulk phase
3748     behaviour are reported. Following this, recently developed lattice
3749     Boltzmann approaches to the mesoscale modelling of nemato-dynanics
3750     are reviewed. This paper concludes with a discussion of possible
3751     areas for future development in this field.},
3752 gezelter 3302 Annote = {989TU Times Cited:2 Cited References Count:258},
3753     Author = {C. M. Care and D. J. Cleaver},
3754     Issn = {0034-4885},
3755     Journal = {Reports on Progress in Physics},
3756     Month = {Nov},
3757     Number = {11},
3758     Pages = {2665-2700},
3759     Title = {Computer simulation of liquid crystals},
3760     Uri = {<Go to ISI>://000233697600004},
3761     Volume = {68},
3762     Year = {2005}}
3763 tim 2999
3764 gezelter 3302 @article{Carrasco1999,
3765     Abstract = {The hydrodynamic properties of rigid particles are calculated from
3766 tim 2999 models composed of spherical elements (beads) using theories developed
3767     by Kirkwood, Bloomfield, and their coworkers. Bead models have usually
3768     been built in such a way that the beads fill the volume occupied
3769     by the particles. Sometimes the beads are few and of varying sizes
3770     (bead models in the strict sense), and other times there are many
3771     small beads (filling models). Because hydrodynamic friction takes
3772     place at the molecular surface, another possibility is to use shell
3773     models, as originally proposed by Bloomfield. In this work, we have
3774     developed procedures to build models of the various kinds, and we
3775     describe the theory and methods for calculating their hydrodynamic
3776     properties, including approximate methods that may be needed to
3777     treat models with a very large number of elements. By combining
3778     the various possibilities of model building and hydrodynamic calculation,
3779     several strategies can be designed. We have made a quantitative
3780     comparison of the performance of the various strategies by applying
3781     them to some test cases, for which the properties are known a priori.
3782     We provide guidelines and computational tools for bead modeling.},
3783 gezelter 3302 Annote = {200TT Times Cited:46 Cited References Count:57},
3784     Author = {B. Carrasco and J. G. {de la Torre}},
3785     Issn = {0006-3495},
3786     Journal = {Biophysical Journal},
3787     Month = {Jun},
3788     Number = {6},
3789     Pages = {3044-3057},
3790     Title = {Hydrodynamic properties of rigid particles: Comparison of different modeling and computational procedures},
3791     Uri = {<Go to ISI>://000080556700016},
3792     Volume = {76},
3793     Year = {1999}}
3794 tim 2999
3795 gezelter 3302 @article{Chandra1999,
3796     Abstract = {Dynamical properties of the soft sticky dipole (SSD) model of water
3797 tim 2999 are calculated by means of molecular dynamics simulations. Since
3798     this is not a simple point model, the forces and torques arising
3799     from the SSD potential are derived here. Simulations are carried
3800     out in the microcanonical ensemble employing the Ewald method for
3801     the electrostatic interactions. Various time correlation functions
3802     and dynamical quantities associated with the translational and rotational
3803     motion of water molecules are evaluated and compared with those
3804     of two other commonly used models of liquid water, namely the transferable
3805     intermolecular potential-three points (TIP3P) and simple point charge/extended
3806     (SPC/E) models, and also with experiments. The dynamical properties
3807     of the SSD water model are found to be in good agreement with the
3808     experimental results and appear to be better than the TIP3P and
3809     SPC/E models in most cases, as has been previously shown for its
3810     thermodynamic, structural, and dielectric properties. Also, molecular
3811     dynamics simulations of the SSD model are found to run much faster
3812     than TIP3P, SPC/E, and other multisite models. (C) 1999 American
3813     Institute of Physics. [S0021-9606(99)51430-X].},
3814 gezelter 3302 Annote = {221EN Times Cited:14 Cited References Count:66},
3815     Author = {A. Chandra and T. Ichiye},
3816     Issn = {0021-9606},
3817     Journal = {Journal of Chemical Physics},
3818     Month = {Aug 8},
3819     Number = {6},
3820     Pages = {2701-2709},
3821     Title = {Dynamical properties of the soft sticky dipole model of water: Molecular dynamics simulations},
3822     Uri = {<Go to ISI>://000081711200038},
3823     Volume = {111},
3824     Year = {1999}}
3825 tim 2999
3826 gezelter 3302 @article{Channell1990,
3827     Annote = {Dk631 Times Cited:152 Cited References Count:34},
3828     Author = {P. J. Channell and C. Scovel},
3829     Issn = {0951-7715},
3830     Journal = {Nonlinearity},
3831     Month = {may},
3832     Number = {2},
3833     Pages = {231-259},
3834     Title = {Symplectic Integration of Hamiltonian-Systems},
3835     Uri = {<Go to ISI>://A1990DK63100001},
3836     Volume = {3},
3837     Year = {1990}}
3838 tim 2999
3839 gezelter 3302 @article{Chen2003,
3840     Abstract = {We investigate the asymptotic behavior of systems of nonlinear differential
3841 tim 2999 equations and introduce a family of mixed methods from combinations
3842     of explicit Runge-Kutta methods. These methods have better stability
3843     behavior than traditional Runge-Kutta methods and generally extend
3844     the range of validity of the calculated solutions. These methods
3845     also give a way of determining if the numerical solutions are real
3846     or spurious. Emphasis is put on examples coming from mathematical
3847     models in ecology. (C) 2002 IMACS. Published by Elsevier Science
3848     B.V. All rights reserved.},
3849 gezelter 3302 Annote = {633ZD Times Cited:0 Cited References Count:9},
3850     Author = {B. Chen and F. Solis},
3851     Issn = {0168-9274},
3852     Journal = {Applied Numerical Mathematics},
3853     Month = {Jan},
3854     Number = {1-2},
3855     Pages = {21-30},
3856     Title = {Explicit mixed finite order Runge-Kutta methods},
3857     Uri = {<Go to ISI>://000180314200002},
3858     Volume = {44},
3859     Year = {2003}}
3860 tim 2999
3861 gezelter 3302 @article{Cheung2004,
3862     Abstract = {Equilibrium molecular dynamics calculations have been performed for
3863 tim 2999 the liquid crystal molecule n-4-(trans-4-n-pentylcyclohexyl)benzonitrile
3864     (PCH5) using a fully atomistic model. Simulation data have been
3865     obtained for a series of temperatures in the nematic phase. The
3866     simulation data have been used to calculate the flexoelectric coefficients
3867     e(s) and e(b) using the linear response formalism of Osipov and
3868     Nemtsov [M. A. Osipov and V. B. Nemtsov, Sov. Phys. Crstallogr.
3869     31, 125 (1986)]. The temperature and order parameter dependence
3870     of e(s) and e(b) are examined, as are separate contributions from
3871     different intermolecular interactions. Values of e(s) and e(b) calculated
3872     from simulation are consistent with those found from experiment.
3873     (C) 2004 American Institute of Physics.},
3874 gezelter 3302 Annote = {866UM Times Cited:4 Cited References Count:61},
3875     Author = {D. L. Cheung and S. J. Clark and M. R. Wilson},
3876     Issn = {0021-9606},
3877     Journal = {Journal of Chemical Physics},
3878     Month = {Nov 8},
3879     Number = {18},
3880     Pages = {9131-9139},
3881     Title = {Calculation of flexoelectric coefficients for a nematic liquid crystal by atomistic simulation},
3882     Uri = {<Go to ISI>://000224798900053},
3883     Volume = {121},
3884     Year = {2004}}
3885 tim 2999
3886 gezelter 3302 @article{Cheung2002,
3887     Abstract = {Equilibrium molecular dynamics calculations have been performed for
3888 tim 2999 the liquid crystal molecule n-4-(trans-4-npentylcyclohexyl)benzonitrile
3889     (PCH5) using a fully atomistic model. Simulation data has been obtained
3890     for a series of temperatures in the nematic phase. The rotational
3891     viscosity co-efficient gamma(1), has been calculated using the angular
3892     velocity correlation function of the nematic director, n, the mean
3893     squared diffusion of n and statistical mechanical methods based
3894     on the rotational diffusion co-efficient. We find good agreement
3895     between the first two methods and experimental values. (C) 2002
3896     Published by Elsevier Science B.V.},
3897 gezelter 3302 Annote = {547KF Times Cited:8 Cited References Count:31},
3898     Author = {D. L. Cheung and S. J. Clark and M. R. Wilson},
3899     Issn = {0009-2614},
3900     Journal = {Chemical Physics Letters},
3901     Month = {Apr 15},
3902     Number = {1-2},
3903     Pages = {140-146},
3904     Title = {Calculation of the rotational viscosity of a nematic liquid crystal},
3905     Uri = {<Go to ISI>://000175331000020},
3906     Volume = {356},
3907     Year = {2002}}
3908 tim 2999
3909 gezelter 3302 @article{Chin2004,
3910     Abstract = {Current molecular dynamics simulations of biomolecules using multiple
3911 tim 2999 time steps to update the slowly changing force are hampered by instabilities
3912     beginning at time steps near the half period of the fastest vibrating
3913     mode. These #resonance# instabilities have became a critical barrier
3914     preventing the long time simulation of biomolecular dynamics. Attempts
3915     to tame these instabilities by altering the slowly changing force
3916     and efforts to damp them out by Langevin dynamics do not address
3917     the fundamental cause of these instabilities. In this work, we trace
3918     the instability to the nonanalytic character of the underlying spectrum
3919     and show that a correct splitting of the Hamiltonian, which renders
3920     the spectrum analytic, restores stability. The resulting Hamiltonian
3921     dictates that in addition to updating the momentum due to the slowly
3922     changing force, one must also update the position with a modified
3923     mass. Thus multiple-time stepping must be done dynamically. (C)
3924     2004 American Institute of Physics.},
3925 gezelter 3302 Annote = {757TK Times Cited:1 Cited References Count:22},
3926     Author = {S. A. Chin},
3927     Issn = {0021-9606},
3928     Journal = {Journal of Chemical Physics},
3929     Month = {Jan 1},
3930     Number = {1},
3931     Pages = {8-13},
3932     Title = {Dynamical multiple-time stepping methods for overcoming resonance instabilities},
3933     Uri = {<Go to ISI>://000187577400003},
3934     Volume = {120},
3935     Year = {2004}}
3936 tim 2746
3937 gezelter 3302 @article{Cook2000,
3938     Abstract = {The Kirkwood correlation factor g(1) determines the preference for
3939 tim 2999 local parallel or antiparallel dipole association in the isotropic
3940     phase. Calamitic mesogens with longitudinal dipole moments and Kirkwood
3941     factors greater than 1 have an enhanced effective dipole moment
3942     along the molecular long axis. This leads to higher values of Delta
3943     epsilon in the nematic phase. This paper describes state-of-the-art
3944     molecular dynamics simulations of two calamitic mesogens 4-(trans-4-n-pentylcyclohexyl)benzonitrile
3945     (PCH5) and 4-(trans-4-n-pentylcyclohexyl) chlorobenzene (PCH5-Cl)
3946     in the isotropic liquid phase using an all-atom force field and
3947     taking long range electrostatics into account using an Ewald summation.
3948     Using this methodology, PCH5 is seen to prefer antiparallel dipole
3949     alignment with a negative g(1) and PCH5-Cl is seen to prefer parallel
3950     dipole alignment with a positive g(1); this is in accordance with
3951     experimental dielectric measurements. Analysis of the molecular
3952     dynamics trajectories allows an assessment of why these molecules
3953     behave differently.},
3954 gezelter 3302 Annote = {376BF Times Cited:10 Cited References Count:16},
3955     Author = {M. J. Cook and M. R. Wilson},
3956     Issn = {0267-8292},
3957     Journal = {Liquid Crystals},
3958     Month = {Dec},
3959     Number = {12},
3960     Pages = {1573-1583},
3961     Title = {Simulation studies of dipole correlation in the isotropic liquid phase},
3962     Uri = {<Go to ISI>://000165437800002},
3963     Volume = {27},
3964     Year = {2000}}
3965 tim 2999
3966 gezelter 3302 @article{Cui2003,
3967     Abstract = {All-atom Langevin dynamics simulations have been performed to study
3968 tim 2999 the folding pathways of the 18-residue binding domain fragment E6ap
3969     of the human papillomavirus E6 interacting peptide. Six independent
3970     folding trajectories, with a total duration of nearly 2 mus, all
3971     lead to the same native state in which the E6ap adopts a fluctuating
3972     a-helix structure in the central portion (Ser-4-Leu-13) but with
3973     very flexible N and C termini. Simulations starting from different
3974     core configurations exhibit the E6ap folding dynamics as either
3975     a two- or three-state folder with an intermediate misfolded state.
3976     The essential leucine hydrophobic core (Leu-9, Leu-12, and Leu-13)
3977     is well conserved in the native-state structure but absent in the
3978     intermediate structure, suggesting that the leucine core is not
3979     only essential for the binding activity of E6ap but also important
3980     for the stability of the native structure. The free energy landscape
3981     reveals a significant barrier between the basins separating the
3982     native and misfolded states. We also discuss the various underlying
3983     forces that drive the peptide into its native state.},
3984 gezelter 3302 Annote = {689LC Times Cited:3 Cited References Count:48},
3985     Author = {B. X. Cui and M. Y. Shen and K. F. Freed},
3986     Issn = {0027-8424},
3987     Journal = {Proceedings of the National Academy of Sciences of the United States of America},
3988     Month = {Jun 10},
3989     Number = {12},
3990     Pages = {7087-7092},
3991     Title = {Folding and misfolding of the papillomavirus E6 interacting peptide E6ap},
3992     Uri = {<Go to ISI>://000183493500037},
3993     Volume = {100},
3994     Year = {2003}}
3995 tim 2746
3996 gezelter 3302 @article{Denisov2003,
3997     Abstract = {We study the slow phase of thermally activated magnetic relaxation
3998 tim 2999 in finite two-dimensional ensembles of dipolar interacting ferromagnetic
3999     nanoparticles whose easy axes of magnetization are perpendicular
4000     to the distribution plane. We develop a method to numerically simulate
4001     the magnetic relaxation for the case that the smallest heights of
4002     the potential barriers between the equilibrium directions of the
4003     nanoparticle magnetic moments are much larger than the thermal energy.
4004     Within this framework, we analyze in detail the role that the correlations
4005     of the nanoparticle magnetic moments and the finite size of the
4006     nanoparticle ensemble play in magnetic relaxation.},
4007 gezelter 3302 Annote = {642XH Times Cited:11 Cited References Count:31},
4008     Author = {S. I. Denisov and T. V. Lyutyy and K. N. Trohidou},
4009     Issn = {1098-0121},
4010     Journal = {Physical Review B},
4011     Month = {Jan 1},
4012     Number = {1},
4013     Pages = {-},
4014     Title = {Magnetic relaxation in finite two-dimensional nanoparticle ensembles},
4015     Uri = {<Go to ISI>://000180830400056},
4016     Volume = {67},
4017     Year = {2003}}
4018 tim 2746
4019 gezelter 3302 @article{Derreumaux1998,
4020     Abstract = {To explore the origin of the large-scale motion of triosephosphate
4021 tim 2999 isomerase's flexible loop (residues 166 to 176) at the active site,
4022     several simulation protocols are employed both for the free enzyme
4023     in vacuo and for the free enzyme with some solvent modeling: high-temperature
4024     Langevin dynamics simulations, sampling by a #dynamics##driver#
4025     approach, and potential-energy surface calculations. Our focus is
4026     on obtaining the energy barrier to the enzyme's motion and establishing
4027     the nature of the loop movement. Previous calculations did not determine
4028     this energy barrier and the effect of solvent on the barrier. High-temperature
4029     molecular dynamics simulations and crystallographic studies have
4030     suggested a rigid-body motion with two hinges located at both ends
4031     of the loop; Brownian dynamics simulations at room temperature pointed
4032     to a very flexible behavior. The present simulations and analyses
4033     reveal that although solute/solvent hydrogen bonds play a crucial
4034     role in lowering the energy along the pathway, there still remains
4035     a high activation barrier, This finding clearly indicates that,
4036     if the loop opens and closes in the absence of a substrate at standard
4037     conditions (e.g., room temperature, appropriate concentration of
4038     isomerase), the time scale for transition is not in the nanosecond
4039     but rather the microsecond range. Our results also indicate that
4040     in the context of spontaneous opening in the free enzyme, the motion
4041     is of rigid-body type and that the specific interaction between
4042     residues Ala(176) and Tyr(208) plays a crucial role in the loop
4043     opening/closing mechanism.},
4044 gezelter 3302 Annote = {Zl046 Times Cited:30 Cited References Count:29},
4045     Author = {P. Derreumaux and T. Schlick},
4046     Issn = {0006-3495},
4047     Journal = {Biophysical Journal},
4048     Month = {Jan},
4049     Number = {1},
4050     Pages = {72-81},
4051     Title = {The loop opening/closing motion of the enzyme triosephosphate isomerase},
4052     Uri = {<Go to ISI>://000073393400009},
4053     Volume = {74},
4054     Year = {1998}}
4055 tim 2746
4056 gezelter 3302 @article{Dullweber1997,
4057     Abstract = {Rigid body molecular models possess symplectic structure and time-reversal
4058 tim 2999 symmetry. Standard numerical integration methods destroy both properties,
4059     introducing nonphysical dynamical behavior such as numerically induced
4060     dissipative states and drift in the energy during long term simulations.
4061     This article describes the construction, implementation, and practical
4062     application of fast explicit symplectic-reversible integrators for
4063     multiple rigid body molecular simulations, These methods use a reduction
4064     to Euler equations for the free rigid body, together with a symplectic
4065     splitting technique. In every time step, the orientational dynamics
4066     of each rigid body is integrated by a sequence of planar rotations.
4067     Besides preserving the symplectic and reversible structures of the
4068     flow, this scheme accurately conserves the total angular momentum
4069     of a system of interacting rigid bodies. Excellent energy conservation
4070     fan be obtained relative to traditional methods, especially in long-time
4071     simulations. The method is implemented in a research code, ORIENT
4072     and compared with a quaternion/extrapolation scheme for the TIP4P
4073     model of water. Our experiments show that the symplectic-reversible
4074     scheme is far superior to the more traditional quaternion method.
4075     (C) 1997 American Institute of Physics.},
4076 gezelter 3302 Annote = {Ya587 Times Cited:35 Cited References Count:32},
4077     Author = {A. Dullweber and B. Leimkuhler and R. McLachlan},
4078     Issn = {0021-9606},
4079     Journal = {Journal of Chemical Physics},
4080     Month = {Oct 15},
4081     Number = {15},
4082     Pages = {5840-5851},
4083     Title = {Symplectic splitting methods for rigid body molecular dynamics},
4084     Uri = {<Go to ISI>://A1997YA58700024},
4085     Volume = {107},
4086     Year = {1997}}
4087 tim 2999
4088 gezelter 3302 @book{Gamma1994,
4089     Address = {London},
4090     Author = {E. Gamma, R. Helm, R. Johnson and J. Vlissides},
4091     Chapter = {7},
4092     Publisher = {Perason Education},
4093     Title = {Design Patterns: Elements of Reusable Object-Oriented Software},
4094     Year = {1994}}
4095 tim 2999
4096 gezelter 3302 @article{Edwards2005,
4097     Abstract = {Using the Langevin dynamics technique, we have carried out simulations
4098 tim 2999 of a single-chain flexible diblock copolymer. The polymer consists
4099     of two blocks of equal length, one very poorly solvated and the
4100     other close to theta-conditions. We study what happens when such
4101     a polymer is stretched, for a range of different stretching speeds,
4102     and correlate our observations with features in the plot of force
4103     vs extension. We find that at slow speeds this force profile does
4104     not increase monotonically, in disagreement with earlier predictions,
4105     and that at high speeds there is a strong dependence on which end
4106     of the polymer is pulled, as well as a high level of hysteresis.},
4107 gezelter 3302 Annote = {992EC Times Cited:0 Cited References Count:13},
4108     Author = {S. A. Edwards and D. R. M. Williams},
4109     Issn = {0024-9297},
4110     Journal = {Macromolecules},
4111     Month = {Dec 13},
4112     Number = {25},
4113     Pages = {10590-10595},
4114     Title = {Stretching a single diblock copolymer in a selective solvent: Langevin dynamics simulations},
4115     Uri = {<Go to ISI>://000233866200035},
4116     Volume = {38},
4117     Year = {2005}}
4118 tim 2746
4119 gezelter 3302 @article{Egberts1988,
4120     Annote = {Q0188 Times Cited:219 Cited References Count:43},
4121     Author = {E. Egberts and H. J. C. Berendsen},
4122     Issn = {0021-9606},
4123     Journal = {Journal of Chemical Physics},
4124     Month = {Sep 15},
4125     Number = {6},
4126     Pages = {3718-3732},
4127     Title = {Molecular-Dynamics Simulation of a Smectic Liquid-Crystal with Atomic Detail},
4128     Uri = {<Go to ISI>://A1988Q018800036},
4129     Volume = {89},
4130     Year = {1988}}
4131 tim 2999
4132 gezelter 3302 @article{Ermak1978,
4133     Annote = {Fp216 Times Cited:785 Cited References Count:42},
4134     Author = {D. L. Ermak and J. A. Mccammon},
4135     Issn = {0021-9606},
4136     Journal = {Journal of Chemical Physics},
4137     Number = {4},
4138     Pages = {1352-1360},
4139     Title = {Brownian Dynamics with Hydrodynamic Interactions},
4140     Uri = {<Go to ISI>://A1978FP21600004},
4141     Volume = {69},
4142     Year = {1978}}
4143 tim 2746
4144 gezelter 3302 @article{Evans1977,
4145     Annote = {Ds757 Times Cited:271 Cited References Count:18},
4146     Author = {D. J. Evans},
4147     Issn = {0026-8976},
4148     Journal = {Molecular Physics},
4149     Number = {2},
4150     Pages = {317-325},
4151     Title = {Representation of Orientation Space},
4152     Uri = {<Go to ISI>://A1977DS75700002},
4153     Volume = {34},
4154     Year = {1977}}
4155 tim 2999
4156 gezelter 3302 @article{Fennell2004,
4157     Abstract = {The density maximum and temperature dependence of the self-diffusion
4158 tim 2999 constant were investigated for the soft sticky dipole (SSD) water
4159     model and two related reparametrizations of this single-point model.
4160     A combination of microcanonical and isobaric-isothermal molecular
4161     dynamics simulations was used to calculate these properties, both
4162     with and without the use of reaction field to handle long-range
4163     electrostatics. The isobaric-isothermal simulations of the melting
4164     of both ice-I-h and ice-I-c showed a density maximum near 260 K.
4165     In most cases, the use of the reaction field resulted in calculated
4166     densities which were significantly lower than experimental densities.
4167     Analysis of self-diffusion constants shows that the original SSD
4168     model captures the transport properties of experimental water very
4169     well in both the normal and supercooled liquid regimes. We also
4170     present our reparametrized versions of SSD for use both with the
4171     reaction field or without any long-range electrostatic corrections.
4172     These are called the SSD/RF and SSD/E models, respectively. These
4173     modified models were shown to maintain or improve upon the experimental
4174     agreement with the structural and transport properties that can
4175     be obtained with either the original SSD or the density-corrected
4176     version of the original model (SSD1). Additionally, a novel low-density
4177     ice structure is presented which appears to be the most stable ice
4178     structure for the entire SSD family. (C) 2004 American Institute
4179     of Physics.},
4180 gezelter 3302 Annote = {816YY Times Cited:5 Cited References Count:39},
4181     Author = {C. J. Fennell and J. D. Gezelter},
4182     Issn = {0021-9606},
4183     Journal = {Journal of Chemical Physics},
4184     Month = {May 15},
4185     Number = {19},
4186     Pages = {9175-9184},
4187     Title = {On the structural and transport properties of the soft sticky dipole and related single-point water models},
4188     Uri = {<Go to ISI>://000221146400032},
4189     Volume = {120},
4190     Year = {2004}}
4191 tim 2999
4192 gezelter 3302 @article{Fernandes2002,
4193     Abstract = {We have developed a Brownian dynamics simulation algorithm to generate
4194 tim 2999 Brownian trajectories of an isolated, rigid particle of arbitrary
4195     shape in the presence of electric fields or any other external agents.
4196     Starting from the generalized diffusion tensor, which can be calculated
4197     with the existing HYDRO software, the new program BROWNRIG (including
4198     a case-specific subprogram for the external agent) carries out a
4199     simulation that is analyzed later to extract the observable dynamic
4200     properties. We provide a variety of examples of utilization of this
4201     method, which serve as tests of its performance, and also illustrate
4202     its applicability. Examples include free diffusion, transport in
4203     an electric field, and diffusion in a restricting environment.},
4204 gezelter 3302 Annote = {633AD Times Cited:2 Cited References Count:43},
4205     Author = {M. X. Fernandes and J. G. {de la Torre}},
4206     Issn = {0006-3495},
4207     Journal = {Biophysical Journal},
4208     Month = {Dec},
4209     Number = {6},
4210     Pages = {3039-3048},
4211     Title = {Brownian dynamics simulation of rigid particles of arbitrary shape in external fields},
4212     Uri = {<Go to ISI>://000180256300012},
4213     Volume = {83},
4214     Year = {2002}}
4215 tim 2746
4216 gezelter 3302 @book{Frenkel1996,
4217     Address = {New York},
4218     Author = {D. Frenkel and B. Smit},
4219     Publisher = {Academic Press},
4220     Title = {Understanding Molecular Simulation : From Algorithms to Applications},
4221     Year = {1996}}
4222 tim 2999
4223 gezelter 3302 @article{Gay1981,
4224     Annote = {Lj347 Times Cited:482 Cited References Count:13},
4225     Author = {J. G. Gay and B. J. Berne},
4226     Issn = {0021-9606},
4227     Journal = {Journal of Chemical Physics},
4228     Number = {6},
4229     Pages = {3316-3319},
4230     Title = {Modification of the Overlap Potential to Mimic a Linear Site-Site Potential},
4231     Uri = {<Go to ISI>://A1981LJ34700029},
4232     Volume = {74},
4233     Year = {1981}}
4234 tim 2999
4235 gezelter 3302 @article{Gelin1999,
4236     Abstract = {To investigate the influence of inertial effects on the dynamics of
4237 tim 2999 an assembly of beads subjected to rigid constraints and placed in
4238     a buffer medium, a convenient method to introduce suitable generalized
4239     coordinates is presented. Without any restriction on the nature
4240     of the soft forces involved (both stochastic and deterministic),
4241     pertinent Langevin equations are derived. Provided that the Brownian
4242     forces are Gaussian and Markovian, the corresponding Fokker-Planck
4243     equation (FPE) is obtained in the complete phase space of generalized
4244     coordinates and momenta. The correct short time behavior for correlation
4245     functions (CFs) of generalized coordinates is established, and the
4246     diffusion equation with memory (DEM) is deduced from the FPE in
4247     the high friction Limit. The DEM is invoked to perform illustrative
4248     calculations in two dimensions of the orientational CFs for once
4249     broken nonrigid rods immobilized on a surface. These calculations
4250     reveal that the CFs under certain conditions exhibit an oscillatory
4251     behavior, which is irreproducible within the standard diffusion
4252     equation. Several methods are considered for the approximate solution
4253     of the DEM, and their application to three dimensional DEMs is discussed.},
4254 gezelter 3302 Annote = {257MM Times Cited:2 Cited References Count:82},
4255     Author = {M. F. Gelin},
4256     Issn = {1022-1344},
4257     Journal = {Macromolecular Theory and Simulations},
4258     Month = {Nov},
4259     Number = {6},
4260     Pages = {529-543},
4261     Title = {Inertial effects in the Brownian dynamics with rigid constraints},
4262     Uri = {<Go to ISI>://000083785700002},
4263     Volume = {8},
4264     Year = {1999}}
4265 tim 2746
4266 gezelter 3302 @article{Goetz1998,
4267     Author = {R. Goetz and R. Lipowsky},
4268     Journal = {Journal of Chemical Physics},
4269     Number = {17},
4270     Pages = {7397},
4271     Title = {Computer simulations of bilayer membranes: Self-assembly and interfacial tension},
4272     Volume = {108},
4273     Year = {1998}}
4274 tim 2999
4275 gezelter 3302 @book{Goldstein2001,
4276     Address = {San Francisco},
4277     Author = {H. Goldstein and C. Poole and J. Safko},
4278     Edition = {3rd},
4279     Publisher = {Addison Wesley},
4280     Title = {Classical Mechanics},
4281     Year = {2001}}
4282 tim 2999
4283 gezelter 3302 @article{Gray2003,
4284     Abstract = {Protein-protein docking algorithms provide a means to elucidate structural
4285 tim 2999 details for presently unknown complexes. Here, we present and evaluate
4286     a new method to predict protein-protein complexes from the coordinates
4287     of the unbound monomer components. The method employs a low-resolution,
4288     rigid-body, Monte Carlo search followed by simultaneous optimization
4289     of backbone displacement and side-chain conformations using Monte
4290     Carlo minimization. Up to 10(5) independent simulations are carried
4291     out, and the resulting #decoys# are ranked using an energy function
4292     dominated by van der Waals interactions, an implicit solvation model,
4293     and an orientation-dependent hydrogen bonding potential. Top-ranking
4294     decoys are clustered to select the final predictions. Small-perturbation
4295     studies reveal the formation of binding funnels in 42 of 54 cases
4296     using coordinates derived from the bound complexes and in 32 of
4297     54 cases using independently determined coordinates of one or both
4298     monomers. Experimental binding affinities correlate with the calculated
4299     score function and explain the predictive success or failure of
4300     many targets. Global searches using one or both unbound components
4301     predict at least 25% of the native residue-residue contacts in 28
4302     of the 32 cases where binding funnels exist. The results suggest
4303     that the method may soon be useful for generating models of biologically
4304     important complexes from the structures of the isolated components,
4305     but they also highlight the challenges that must be met to achieve
4306     consistent and accurate prediction of protein-protein interactions.
4307     (C) 2003 Elsevier Ltd. All rights reserved.},
4308 gezelter 3302 Annote = {704QL Times Cited:48 Cited References Count:60},
4309     Author = {J. J. Gray and S. Moughon and C. Wang and O. Schueler-Furman and B. Kuhlman and C. A. Rohl and D. Baker},
4310     Issn = {0022-2836},
4311     Journal = {Journal of Molecular Biology},
4312     Month = {Aug 1},
4313     Number = {1},
4314     Pages = {281-299},
4315     Title = {Protein-protein docking with simultaneous optimization of rigid-body displacement and side-chain conformations},
4316     Uri = {<Go to ISI>://000184351300022},
4317     Volume = {331},
4318     Year = {2003}}
4319 tim 2746
4320 gezelter 3302 @article{Greengard1994,
4321     Abstract = {Some of the recently developed fast summation methods that have arisen
4322 tim 2999 in scientific computing are described. These methods require an
4323     amount of work proportional to N or N log N to evaluate all pairwise
4324     interactions in an ensemble of N particles. Traditional methods,
4325     by contrast, require an amount of work proportional to N-2. AS a
4326     result, large-scale simulations can be carried out using only modest
4327     computer resources. In combination with supercomputers, it is possible
4328     to address questions that were previously out of reach. Problems
4329     from diffusion, gravitation, and wave propagation are considered.},
4330 gezelter 3302 Annote = {Pb499 Times Cited:99 Cited References Count:44},
4331     Author = {L. Greengard},
4332     Issn = {0036-8075},
4333     Journal = {Science},
4334     Month = {Aug 12},
4335     Number = {5174},
4336     Pages = {909-914},
4337     Title = {Fast Algorithms for Classical Physics},
4338     Uri = {<Go to ISI>://A1994PB49900031},
4339     Volume = {265},
4340     Year = {1994}}
4341 tim 2999
4342 gezelter 3302 @article{Greengard1987,
4343     Annote = {L0498 Times Cited:899 Cited References Count:7},
4344     Author = {L. Greengard and V. Rokhlin},
4345     Issn = {0021-9991},
4346     Journal = {Journal of Computational Physics},
4347     Month = {Dec},
4348     Number = {2},
4349     Pages = {325-348},
4350     Title = {A Fast Algorithm for Particle Simulations},
4351     Uri = {<Go to ISI>://A1987L049800006},
4352     Volume = {73},
4353     Year = {1987}}
4354 tim 2999
4355 gezelter 3302 @article{Hairer1997,
4356     Abstract = {Backward error analysis is a useful tool for the study of numerical
4357 tim 2999 approximations to ordinary differential equations. The numerical
4358     solution is formally interpreted as the exact solution of a perturbed
4359     differential equation, given as a formal and usually divergent series
4360     in powers of the step size. For a rigorous analysis, this series
4361     has to be truncated. In this article we study the influence of this
4362     truncation to the difference between the numerical solution and
4363     the exact solution of the perturbed differential equation. Results
4364     on the long-time behaviour of numerical solutions are obtained in
4365     this way. We present applications to the numerical phase portrait
4366     near hyperbolic equilibrium points, to asymptotically stable periodic
4367     orbits and Hopf bifurcation, and to energy conservation and approximation
4368     of invariant tori in Hamiltonian systems.},
4369 gezelter 3302 Annote = {Xj488 Times Cited:50 Cited References Count:19},
4370     Author = {E. Hairer and C. Lubich},
4371     Issn = {0029-599X},
4372     Journal = {Numerische Mathematik},
4373     Month = {Jun},
4374     Number = {4},
4375     Pages = {441-462},
4376     Title = {The life-span of backward error analysis for numerical integrators},
4377     Uri = {<Go to ISI>://A1997XJ48800002},
4378     Volume = {76},
4379     Year = {1997}}
4380 tim 2999
4381 gezelter 3302 @article{Hao1993,
4382     Abstract = {A new procedure for studying the folding and unfolding of proteins,
4383 tim 2999 with an application to bovine pancreatic trypsin inhibitor (BPTI),
4384     is reported. The unfolding and refolding of the native structure
4385     of the protein are characterized by the dimensions of the protein,
4386     expressed in terms of the three principal radii of the structure
4387     considered as an ellipsoid. A dynamic equation, describing the variations
4388     of the principal radii on the unfolding path, and a numerical procedure
4389     to solve this equation are proposed. Expanded and distorted conformations
4390     are refolded to the native structure by a dimensional-constraint
4391     energy minimization procedure. A unique and reproducible unfolding
4392     pathway for an intermediate of BPTI lacking the [30,51] disulfide
4393     bond is obtained. The resulting unfolded conformations are extended;
4394     they contain near-native local structure, but their longest principal
4395     radii are more than 2.5 times greater than that of the native structure.
4396     The most interesting finding is that the majority of expanded conformations,
4397     generated under various conditions, can be refolded closely to the
4398     native structure, as measured by the correct overall chain fold,
4399     by the rms deviations from the native structure of only 1.9-3.1
4400     angstrom, and by the energy differences of about 10 kcal/mol from
4401     the native structure. Introduction of the [30,51] disulfide bond
4402     at this stage, followed by minimization, improves the closeness
4403     of the refolded structures to the native structure, reducing the
4404     rms deviations to 0.9-2.0 angstrom. The unique refolding of these
4405     expanded structures over such a large conformational space implies
4406     that the folding is strongly dictated by the interactions in the
4407     amino acid sequence of BPTI. The simulations indicate that, under
4408     conditions that favor a compact structure as mimicked by the volume
4409     constraints in our algorithm; the expanded conformations have a
4410     strong tendency to move toward the native structure; therefore,
4411     they probably would be favorable folding intermediates. The results
4412     presented here support a general model for protein folding, i.e.,
4413     progressive formation of partially folded structural units, followed
4414     by collapse to the compact native structure. The general applicability
4415     of the procedure is also discussed.},
4416 gezelter 3302 Annote = {Ly294 Times Cited:27 Cited References Count:57},
4417     Author = {M. H. Hao and M. R. Pincus and S. Rackovsky and H. A. Scheraga},
4418     Issn = {0006-2960},
4419     Journal = {Biochemistry},
4420     Month = {Sep 21},
4421     Number = {37},
4422     Pages = {9614-9631},
4423     Title = {Unfolding and Refolding of the Native Structure of Bovine Pancreatic Trypsin-Inhibitor Studied by Computer-Simulations},
4424     Uri = {<Go to ISI>://A1993LY29400014},
4425     Volume = {32},
4426     Year = {1993}}
4427 tim 2746
4428 gezelter 3302 @article{Hinsen2000,
4429     Abstract = {The slow dynamics of proteins around its native folded state is usually
4430 tim 2999 described by diffusion in a strongly anharmonic potential. In this
4431     paper, we try to understand the form and origin of the anharmonicities,
4432     with the principal aim of gaining a better understanding of the
4433     principal motion types, but also in order to develop more efficient
4434     numerical methods for simulating neutron scattering spectra of large
4435     proteins. First, we decompose a molecular dynamics (MD) trajectory
4436     of 1.5 ns for a C-phycocyanin dimer surrounded by a layer of water
4437     into three contributions that we expect to be independent: the global
4438     motion of the residues, the rigid-body motion of the sidechains
4439     relative to the backbone, and the internal deformations of the sidechains.
4440     We show that they are indeed almost independent by verifying the
4441     factorization of the incoherent intermediate scattering function.
4442     Then, we show that the global residue motions, which include all
4443     large-scale backbone motions, can be reproduced by a simple harmonic
4444     model which contains two contributions: a short-time vibrational
4445     term, described by a standard normal mode calculation in a local
4446     minimum, and a long-time diffusive term, described by Brownian motion
4447     in an effective harmonic potential. The potential and the friction
4448     constants were fitted to the MD data. The major anharmonic contribution
4449     to the incoherent intermediate scattering function comes from the
4450     rigid-body diffusion of the sidechains. This model can be used to
4451     calculate scattering functions for large proteins and for long-time
4452     scales very efficiently, and thus provides a useful complement to
4453     MD simulations, which are best suited for detailed studies on smaller
4454     systems or for shorter time scales. (C) 2000 Elsevier Science B.V.
4455     All rights reserved.},
4456 gezelter 3302 Annote = {Sp. Iss. SI 368MT Times Cited:16 Cited References Count:31},
4457     Author = {K. Hinsen and A. J. Petrescu and S. Dellerue and M. C. Bellissent-Funel and G. R. Kneller},
4458     Issn = {0301-0104},
4459     Journal = {Chemical Physics},
4460     Month = {Nov 1},
4461     Number = {1-2},
4462     Pages = {25-37},
4463     Title = {Harmonicity in slow protein dynamics},
4464     Uri = {<Go to ISI>://000090121700003},
4465     Volume = {261},
4466     Year = {2000}}
4467 tim 2746
4468 gezelter 3302 @article{Ho1992,
4469     Abstract = {Evidence has been found for the existence water at the protein-lipid
4470 tim 2999 hydrophobic interface ot the membrane proteins, gramicidin and apocytochrome
4471     C, using two related fluorescence spectroscopic approaches. The
4472     first approach exploited the fact that the presence of water in
4473     the excited state solvent cage of a fluorophore increases the rate
4474     of decay. For 1,6-diphenyl-1,3,5-hexatriene (DPH) and 1-palmitoyl-2-[[2-[4-(6-phenyl-trans-1,3,5-hexatrienyl)
4475     phenyl]ethyl]carbonyl]-3-sn-PC (DPH-PC), where the fluorophores
4476     are located in the hydrophobic core of the lipid bilayer, the introduction
4477     of gramicidin reduced the fluorescence lifetime, indicative of an
4478     increased presence of water in the bilayer. Since a high protein:lipid
4479     ratio was used, the fluorophores were forced to be adjacent to the
4480     protein hydrophobic surface, hence the presence of water in this
4481     region could be inferred. Cholesterol is known to reduce the water
4482     content of lipid bilayers and this effect was maintained at the
4483     protein-lipid interface with both gramicidin and apocytochrome C,
4484     again suggesting hydration in this region. The second approach was
4485     to use the fluorescence enhancement induced by exchanging deuterium
4486     oxide (D2O) for H2O. Both the fluorescence intensities of trimethylammonium-DPH,
4487     located in the lipid head group region, and of the gramicidin intrinsic
4488     tryptophans were greater in a D2O buffer compared with H2O, showing
4489     that the fluorophores were exposed to water in the bilayer at the
4490     protein-lipid interface. In the presence of cholesterol the fluorescence
4491     intensity ratio of D2O to H2O decreased, indicating a removal of
4492     water by the cholesterol, in keeping with the lifetime data. Altered
4493     hydration at the protein-lipid interface could affect conformation,
4494     thereby offering a new route by which membrane protein functioning
4495     may be modified.},
4496 gezelter 3302 Annote = {Ju251 Times Cited:55 Cited References Count:44},
4497     Author = {C. Ho and C. D. Stubbs},
4498     Issn = {0006-3495},
4499     Journal = {Biophysical Journal},
4500     Month = {Oct},
4501     Number = {4},
4502     Pages = {897-902},
4503     Title = {Hydration at the Membrane Protein-Lipid Interface},
4504     Uri = {<Go to ISI>://A1992JU25100002},
4505     Volume = {63},
4506     Year = {1992}}
4507 tim 2999
4508 gezelter 3302 @book{Hockney1981,
4509     Address = {New York},
4510     Author = {R.W. Hockney and J.W. Eastwood},
4511     Publisher = {McGraw-Hill},
4512     Title = {Computer Simulation Using Particles},
4513     Year = {1981}}
4514 tim 2999
4515 gezelter 3302 @article{Hoover1985,
4516     Annote = {Acr30 Times Cited:1809 Cited References Count:11},
4517     Author = {W. G. Hoover},
4518     Issn = {1050-2947},
4519     Journal = {Physical Review A},
4520     Number = {3},
4521     Pages = {1695-1697},
4522     Title = {Canonical Dynamics - Equilibrium Phase-Space Distributions},
4523     Uri = {<Go to ISI>://A1985ACR3000056},
4524     Volume = {31},
4525     Year = {1985}}
4526 tim 2999
4527 gezelter 3302 @article{Huh2004,
4528     Abstract = {Racemic fluids of chiral calamitic molecules are investigated with
4529 tim 2999 molecular dynamics simulations. In particular, the phase behavior
4530     as a function of density is examined for eight racemates. The relationship
4531     between chiral discrimination and orientational order in the phase
4532     is explored. We find that the transition from the isotropic phase
4533     to a liquid crystal phase is accompanied by an increase in chiral
4534     discrimination, as measured by differences in radial distributions.
4535     Among ordered phases, discrimination is largest for smectic phases
4536     with a significant preference for heterochiral contact within the
4537     layers. (C) 2004 American Institute of Physics.},
4538 gezelter 3302 Annote = {870FJ Times Cited:0 Cited References Count:63},
4539     Author = {Y. Huh and N. M. Cann},
4540     Issn = {0021-9606},
4541     Journal = {Journal of Chemical Physics},
4542     Month = {Nov 22},
4543     Number = {20},
4544     Pages = {10299-10308},
4545     Title = {Discrimination in isotropic, nematic, and smectic phases of chiral calamitic molecules: A computer simulation study},
4546     Uri = {<Go to ISI>://000225042700059},
4547     Volume = {121},
4548     Year = {2004}}
4549 tim 2999
4550 gezelter 3302 @article{Humphrey1996,
4551     Abstract = {VMD is a molecular graphics program designed for the display and analysis
4552 tim 2999 of molecular assemblies, in particular biopolymers such as proteins
4553     and nucleic acids. VMD can simultaneously display any number of
4554     structures using a wide variety of rendering styles and coloring
4555     methods. Molecules are displayed as one or more ''representations,''
4556     in which each representation embodies a particular rendering method
4557     and coloring scheme for a selected subset of atoms. The atoms displayed
4558     in each representation are chosen using an extensive atom selection
4559     syntax, which includes Boolean operators and regular expressions.
4560     VMD provides a complete graphical user interface for program control,
4561     as well as a text interface using the Tcl embeddable parser to allow
4562     for complex scripts with variable substitution, control loops, and
4563     function calls. Full session logging is supported, which produces
4564     a VMD command script for later playback. High-resolution raster
4565     images of displayed molecules may be produced by generating input
4566     scripts for use by a number of photorealistic image-rendering applications.
4567     VMD has also been expressly designed with the ability to animate
4568     molecular dynamics (MD) simulation trajectories, imported either
4569     from files or from a direct connection to a running MD simulation.
4570     VMD is the visualization component of MDScope, a set of tools for
4571     interactive problem solving in structural biology, which also includes
4572     the parallel MD program NAMD, and the MDCOMM software used to connect
4573     the visualization and simulation programs. VMD is written in C++,
4574     using an object-oriented design; the program, including source code
4575     and extensive documentation, is freely available via anonymous ftp
4576     and through the World Wide Web.},
4577 gezelter 3302 Annote = {Uh515 Times Cited:1418 Cited References Count:19},
4578     Author = {W. Humphrey and A. Dalke and K. Schulten},
4579     Issn = {0263-7855},
4580     Journal = {Journal of Molecular Graphics},
4581     Month = {Feb},
4582     Number = {1},
4583     Pages = {33-\&},
4584     Title = {VMD: Visual molecular dynamics},
4585     Uri = {<Go to ISI>://A1996UH51500005},
4586     Volume = {14},
4587     Year = {1996}}
4588 tim 2999
4589 gezelter 3302 @article{Izaguirre2001,
4590     Abstract = {In this paper we show the possibility of using very mild stochastic
4591 tim 2999 damping to stabilize long time step integrators for Newtonian molecular
4592     dynamics. More specifically, stable and accurate integrations are
4593     obtained for damping coefficients that are only a few percent of
4594     the natural decay rate of processes of interest, such as the velocity
4595     autocorrelation function. Two new multiple time stepping integrators,
4596     Langevin Molly (LM) and Brunger-Brooks-Karplus-Molly (BBK-M), are
4597     introduced in this paper. Both use the mollified impulse method
4598     for the Newtonian term. LM uses a discretization of the Langevin
4599     equation that is exact for the constant force, and BBK-M uses the
4600     popular Brunger-Brooks-Karplus integrator (BBK). These integrators,
4601     along with an extrapolative method called LN, are evaluated across
4602     a wide range of damping coefficient values. When large damping coefficients
4603     are used, as one would for the implicit modeling of solvent molecules,
4604     the method LN is superior, with LM closely following. However, with
4605     mild damping of 0.2 ps(-1), LM produces the best results, allowing
4606     long time steps of 14 fs in simulations containing explicitly modeled
4607     flexible water. With BBK-M and the same damping coefficient, time
4608     steps of 12 fs are possible for the same system. Similar results
4609     are obtained for a solvated protein-DNA simulation of estrogen receptor
4610     ER with estrogen response element ERE. A parallel version of BBK-M
4611     runs nearly three times faster than the Verlet-I/r-RESPA (reversible
4612     reference system propagator algorithm) when using the largest stable
4613     time step on each one, and it also parallelizes well. The computation
4614     of diffusion coefficients for flexible water and ER/ERE shows that
4615     when mild damping of up to 0.2 ps-1 is used the dynamics are not
4616     significantly distorted. (C) 2001 American Institute of Physics.},
4617 gezelter 3302 Annote = {397CQ Times Cited:14 Cited References Count:36},
4618     Author = {J. A. Izaguirre and D. P. Catarello and J. M. Wozniak and R. D. Skeel},
4619     Issn = {0021-9606},
4620     Journal = {Journal of Chemical Physics},
4621     Month = {Feb 1},
4622     Number = {5},
4623     Pages = {2090-2098},
4624     Title = {Langevin stabilization of molecular dynamics},
4625     Uri = {<Go to ISI>://000166676100020},
4626     Volume = {114},
4627     Year = {2001}}
4628 tim 2746
4629 gezelter 3302 @article{Torre1977,
4630     Author = {Jose Garcia De La Torre, V.A. Bloomfield},
4631     Journal = {Biopolymers},
4632     Pages = {1747-1763},
4633     Title = {Hydrodynamic properties of macromolecular complexes. I. Translation},
4634     Volume = {16},
4635     Year = {1977}}
4636 tim 2999
4637 gezelter 3302 @article{Kale1999,
4638     Abstract = {Molecular dynamics programs simulate the behavior of biomolecular
4639 tim 2999 systems, leading to understanding of their functions. However, the
4640     computational complexity of such simulations is enormous. Parallel
4641     machines provide the potential to meet this computational challenge.
4642     To harness this potential, it is necessary to develop a scalable
4643     program. It is also necessary that the program be easily modified
4644     by application-domain programmers. The NAMD2 program presented in
4645     this paper seeks to provide these desirable features. It uses spatial
4646     decomposition combined with force decomposition to enhance scalability.
4647     It uses intelligent periodic load balancing, so as to maximally
4648     utilize the available compute power. It is modularly organized,
4649     and implemented using Charm++, a parallel C++ dialect, so as to
4650     enhance its modifiability. It uses a combination of numerical techniques
4651     and algorithms to ensure that energy drifts are minimized, ensuring
4652     accuracy in long running calculations. NAMD2 uses a portable run-time
4653     framework called Converse that also supports interoperability among
4654     multiple parallel paradigms. As a result, different components of
4655     applications can be written in the most appropriate parallel paradigms.
4656     NAMD2 runs on most parallel machines including workstation clusters
4657     and has yielded speedups in excess of 180 on 220 processors. This
4658     paper also describes the performance obtained on some benchmark
4659     applications. (C) 1999 Academic Press.},
4660 gezelter 3302 Annote = {194FM Times Cited:373 Cited References Count:51},
4661     Author = {L. Kale and R. Skeel and M. Bhandarkar and R. Brunner and A. Gursoy and N. Krawetz and J. Phillips and A. Shinozaki and K. Varadarajan and K. Schulten},
4662     Issn = {0021-9991},
4663     Journal = {Journal of Computational Physics},
4664     Month = {May 1},
4665     Number = {1},
4666     Pages = {283-312},
4667     Title = {NAMD2: Greater scalability for parallel molecular dynamics},
4668     Uri = {<Go to ISI>://000080181500013},
4669     Volume = {151},
4670     Year = {1999}}
4671 tim 2999
4672 gezelter 3302 @article{Kane2000,
4673     Abstract = {The purpose of this work is twofold. First, we demonstrate analytically
4674 tim 2999 that the classical Newmark family as well as related integration
4675     algorithms are variational in the sense of the Veselov formulation
4676     of discrete mechanics. Such variational algorithms are well known
4677     to be symplectic and momentum preserving and to often have excellent
4678     global energy behaviour. This analytical result is verified through
4679     numerical examples and is believed to be one of the primary reasons
4680     that this class of algorithms performs so well. Second, we develop
4681     algorithms for mechanical systems with forcing, and in particular,
4682     for dissipative systems. In this case, we develop integrators that
4683     are based on a discretization of the Lagrange d'Alembert principle
4684     as well as on a variational formulation of dissipation. It is demonstrated
4685     that these types of structured integrators have good numerical behaviour
4686     in terms of obtaining the correct amounts by which the energy changes
4687     over the integration run. Copyright (C) 2000 John Wiley & Sons,
4688     Ltd.},
4689 gezelter 3302 Annote = {373CJ Times Cited:30 Cited References Count:41},
4690     Author = {C. Kane and J. E. Marsden and M. Ortiz and M. West},
4691     Issn = {0029-5981},
4692     Journal = {International Journal for Numerical Methods in Engineering},
4693     Month = {Dec 10},
4694     Number = {10},
4695     Pages = {1295-1325},
4696     Title = {Variational integrators and the Newmark algorithm for conservative and dissipative mechanical systems},
4697     Uri = {<Go to ISI>://000165270600004},
4698     Volume = {49},
4699     Year = {2000}}
4700 tim 2999
4701 gezelter 3302 @article{Klimov1997,
4702     Abstract = {The viscosity (eta) dependence of the folding rates for four sequences
4703 tim 2999 (the native state of three sequences is a beta sheet, while the
4704     fourth forms an alpha helix) is calculated for off-lattice models
4705     of proteins. Assuming that the dynamics is given by the Langevin
4706     equation, we show that the folding rates increase linearly at low
4707     viscosities eta, decrease as 1/eta at large eta, and have a maximum
4708     at intermediate values. The Kramers' theory of barrier crossing
4709     provides a quantitative fit of the numerical results. By mapping
4710     the simulation results to real proteins we estimate that for optimized
4711     sequences the time scale for forming a four turn alpha-helix topology
4712     is about 500 ns, whereas for beta sheet it is about 10 mu s.},
4713 gezelter 3302 Annote = {Xk293 Times Cited:77 Cited References Count:17},
4714     Author = {D. K. Klimov and D. Thirumalai},
4715     Issn = {0031-9007},
4716     Journal = {Physical Review Letters},
4717     Month = {Jul 14},
4718     Number = {2},
4719     Pages = {317-320},
4720     Title = {Viscosity dependence of the folding rates of proteins},
4721     Uri = {<Go to ISI>://A1997XK29300035},
4722     Volume = {79},
4723     Year = {1997}}
4724 tim 2746
4725 gezelter 3302 @article{Kol1997,
4726     Abstract = {Rigid-body molecular dynamics simulations typically are performed
4727 tim 2999 in a quaternion representation. The nonseparable form of the Hamiltonian
4728     in quaternions prevents the use of a standard leapfrog (Verlet)
4729     integrator, so nonsymplectic Runge-Kutta, multistep, or extrapolation
4730     methods are generally used, This is unfortunate since symplectic
4731     methods like Verlet exhibit superior energy conservation in long-time
4732     integrations. In this article, we describe an alternative method,
4733     which we call RSHAKE (for rotation-SHAKE), in which the entire rotation
4734     matrix is evolved (using the scheme of McLachlan and Scovel [J.
4735     Nonlin. Sci, 16 233 (1995)]) in tandem with the particle positions.
4736     We employ a fast approximate Newton solver to preserve the orthogonality
4737     of the rotation matrix. We test our method on a system of soft-sphere
4738     dipoles and compare with quaternion evolution using a 4th-order
4739     predictor-corrector integrator, Although the short-time error of
4740     the quaternion algorithm is smaller for fixed time step than that
4741     for RSHAKE, the quaternion scheme exhibits an energy drift which
4742     is not observed in simulations with RSHAKE, hence a fixed energy
4743     tolerance can be achieved by using a larger time step, The superiority
4744     of RSHAKE increases with system size. (C) 1997 American Institute
4745     of Physics.},
4746 gezelter 3302 Annote = {Xq332 Times Cited:11 Cited References Count:18},
4747     Author = {A. Kol and B. B. Laird and B. J. Leimkuhler},
4748     Issn = {0021-9606},
4749     Journal = {Journal of Chemical Physics},
4750     Month = {Aug 15},
4751     Number = {7},
4752     Pages = {2580-2588},
4753     Title = {A symplectic method for rigid-body molecular simulation},
4754     Uri = {<Go to ISI>://A1997XQ33200046},
4755     Volume = {107},
4756     Year = {1997}}
4757 tim 2999
4758 gezelter 3302 @article{Lansac2001,
4759     Abstract = {Cyanobiphenyls (nCB's) represent a useful and intensively studied
4760 tim 2999 class of mesogens. Many of the peculiar properties of nCB's (e.g.,
4761     the occurence of the partial bilayer smectic-A(d) phase) are thought
4762     to be a manifestation of short-range antiparallel association of
4763     neighboring molecules, resulting from strong dipole-dipole interactions
4764     between cyano groups. To test and extend existing models of microscopic
4765     ordering in nCB's, we carry out large-scale atomistic simulation
4766     studies of the microscopic structure and dynamics of the Sm-A(d)
4767     phase of 4-octyl-4'-cyanobiphenyl (8CB). We compute a variety of
4768     thermodynamic, structural, and dynamical properties for this material,
4769     and make a detailed comparison of our results with experimental
4770     measurements in order to validate our molecular model. Semiquantitative
4771     agreement with experiment is found: the smectic layer spacing and
4772     mass density are well reproduced, translational diffusion constants
4773     are similar to experiment, but the orientational ordering of alkyl
4774     chains is overestimated. This simulation provides a detailed picture
4775     of molecular conformation, smectic layer structure, and intermolecular
4776     correlations in Sm-A(d) 8CB, and demonstrates that pronounced short-range
4777     antiparallel association of molecules arising from dipole-dipole
4778     interactions plays a dominant role in determining the molecular-scale
4779     structure of 8CB.},
4780 gezelter 3302 Annote = {Part 1 496QF Times Cited:10 Cited References Count:60},
4781     Author = {Y. Lansac and M. A. Glaser and N. A. Clark},
4782     Issn = {1063-651X},
4783     Journal = {Physical Review E},
4784     Month = {Nov},
4785     Number = {5},
4786     Pages = {-},
4787     Title = {Microscopic structure and dynamics of a partial bilayer smectic liquid crystal},
4788     Uri = {<Go to ISI>://000172406900063},
4789     Volume = {6405},
4790     Year = {2001}}
4791 tim 2999
4792 gezelter 3302 @article{Lansac2003,
4793     Abstract = {Recently, a new class of smectic liquid crystal phases characterized
4794 tim 2999 by the spontaneous formation of macroscopic chiral domains from
4795     achiral bent-core molecules has been discovered. We have carried
4796     out Monte Carlo simulations of a minimal hard spherocylinder dimer
4797     model to investigate the role of excluded volume interactions in
4798     determining the phase behavior of bent-core materials and to probe
4799     the molecular origins of polar and chiral symmetry breaking. We
4800     present the phase diagram of hard spherocylinder dimers of length-diameter
4801     ratio of 5 as a function of pressure or density and dimer opening
4802     angle psi. With decreasing psi, a transition from a nonpolar to
4803     a polar smectic A phase is observed near psi=167degrees, and the
4804     nematic phase becomes thermodynamically unstable for psi<135degrees.
4805     Free energy calculations indicate that the antipolar smectic A (SmAP(A))
4806     phase is more stable than the polar smectic A phase (SmAP(F)). No
4807     chiral smectic or biaxial nematic phases were found.},
4808 gezelter 3302 Annote = {Part 1 646CM Times Cited:15 Cited References Count:38},
4809     Author = {Y. Lansac and P. K. Maiti and N. A. Clark and M. A. Glaser},
4810     Issn = {1063-651X},
4811     Journal = {Physical Review E},
4812     Month = {Jan},
4813     Number = {1},
4814     Pages = {-},
4815     Title = {Phase behavior of bent-core molecules},
4816     Uri = {<Go to ISI>://000181017300042},
4817     Volume = {67},
4818     Year = {2003}}
4819 tim 2999
4820 gezelter 3302 @book{Leach2001,
4821     Address = {Harlow, England},
4822     Author = {A. Leach},
4823     Edition = {2nd},
4824     Publisher = {Pearson Educated Limited},
4825     Title = {Molecular Modeling: Principles and Applications},
4826     Year = {2001}}
4827 tim 2999
4828 gezelter 3302 @article{Leimkuhler1999,
4829     Abstract = {Reversible and adaptive integration methods based on Kustaanheimo-Stiefel
4830 tim 2999 regularization and modified Sundman transformations are applied
4831     to simulate general perturbed Kepler motion and to compute classical
4832     trajectories of atomic systems (e.g. Rydberg atoms). The new family
4833     of reversible adaptive regularization methods also conserves angular
4834     momentum and exhibits superior energy conservation and numerical
4835     stability in long-time integrations. The schemes are appropriate
4836     for scattering, for astronomical calculations of escape time and
4837     long-term stability, and for classical and semiclassical studies
4838     of atomic dynamics. The components of an algorithm for trajectory
4839     calculations are described. Numerical experiments illustrate the
4840     effectiveness of the reversible approach.},
4841 gezelter 3302 Annote = {199EE Times Cited:11 Cited References Count:48},
4842     Author = {B. Leimkuhler},
4843     Issn = {1364-503X},
4844     Journal = {Philosophical Transactions of the Royal Society of London Series a-Mathematical Physical and Engineering Sciences},
4845     Month = {Apr 15},
4846     Number = {1754},
4847     Pages = {1101-1133},
4848     Title = {Reversible adaptive regularization: perturbed Kepler motion and classical atomic trajectories},
4849     Uri = {<Go to ISI>://000080466800007},
4850     Volume = {357},
4851     Year = {1999}}
4852 tim 2999
4853 gezelter 3302 @book{Leimkuhler2004,
4854     Address = {Cambridge},
4855     Author = {B. Leimkuhler and S. Reich},
4856     Publisher = {Cambridge University Press},
4857     Title = {Simulating Hamiltonian Dynamics},
4858     Year = {2004}}
4859 tim 2999
4860 gezelter 3302 @article{Levelut1981,
4861     Annote = {Ml751 Times Cited:96 Cited References Count:16},
4862     Author = {A. M. Levelut and R. J. Tarento and F. Hardouin and M. F. Achard and G. Sigaud},
4863     Issn = {1050-2947},
4864     Journal = {Physical Review A},
4865     Number = {4},
4866     Pages = {2180-2186},
4867     Title = {Number of Sa Phases},
4868     Uri = {<Go to ISI>://A1981ML75100057},
4869     Volume = {24},
4870     Year = {1981}}
4871 tim 2999
4872 gezelter 3302 @article{Lieb1982,
4873     Annote = {Nu461 Times Cited:40 Cited References Count:28},
4874     Author = {W. R. Lieb and M. Kovalycsik and R. Mendelsohn},
4875     Issn = {0006-3002},
4876     Journal = {Biochimica Et Biophysica Acta},
4877     Number = {2},
4878     Pages = {388-398},
4879     Title = {Do Clinical-Levels of General-Anesthetics Affect Lipid Bilayers - Evidence from Raman-Scattering},
4880     Uri = {<Go to ISI>://A1982NU46100012},
4881     Volume = {688},
4882     Year = {1982}}
4883 tim 2999
4884 gezelter 3302 @article{Link1997,
4885     Abstract = {A smectic liquid-crystal phase made from achiral molecules with bent
4886 tim 2999 cores was found to have fluid layers that exhibit two spontaneous
4887     symmetry-breaking instabilities: polar molecular orientational ordering
4888     about the layer normal and molecular tilt. These instabilities combine
4889     to form a chiral layer structure with a handedness that depends
4890     on the sign of the tilt. The bulk states are either antiferroelectric-racemic,
4891     with the layer polar direction and handedness alternating in sign
4892     from layer to layer, or antiferroelectric-chiral, which is of uniform
4893     layer handedness. Both states exhibit an electric field-induced
4894     transition from antiferroelectric to ferroelectric.},
4895 gezelter 3302 Annote = {Yl002 Times Cited:407 Cited References Count:25},
4896     Author = {D. R. Link and G. Natale and R. Shao and J. E. Maclennan and N. A. Clark and E. Korblova and D. M. Walba},
4897     Issn = {0036-8075},
4898     Journal = {Science},
4899     Month = {Dec 12},
4900     Number = {5345},
4901     Pages = {1924-1927},
4902     Title = {Spontaneous formation of macroscopic chiral domains in a fluid smectic phase of achiral molecules},
4903     Uri = {<Go to ISI>://A1997YL00200028},
4904     Volume = {278},
4905     Year = {1997}}
4906 tim 2999
4907 gezelter 3302 @article{Liwo2005,
4908     Annote = {Suppl. 1 005MG Times Cited:0 Cited References Count:0},
4909     Author = {A. Liwo and M. Khalili and H. A. Scheraga},
4910     Issn = {1742-464X},
4911     Journal = {Febs Journal},
4912     Month = {Jul},
4913     Pages = {359-360},
4914     Title = {Ab initio simulations of protein folding pathways by molecular dynamics with the united-residue (UNRES) model of polypeptide chains},
4915     Uri = {<Go to ISI>://000234826102043},
4916     Volume = {272},
4917     Year = {2005}}
4918 tim 2746
4919 gezelter 3302 @article{Luty1994,
4920     Abstract = {We compare the Particle-Particle Particle-Mesh (PPPM) and Ewald methods
4921 tim 2999 for calculating electrostatic interactions in periodic molecular
4922     systems. A brief comparison of the theories shows that the methods
4923     are very similar differing mainly in the technique which is used
4924     to perform the ''k-space'' or mesh calculation. Because the PPPM
4925     utilizes the highly efficient numerical Fast Fourier Transform (FFT)
4926     method it requires significantly less computational effort than
4927     the Ewald method and scale's almost linearly with system size.},
4928 gezelter 3302 Annote = {Qf464 Times Cited:50 Cited References Count:20},
4929     Author = {B. A. Luty and M. E. Davis and I. G. Tironi and W. F. Vangunsteren},
4930     Issn = {0892-7022},
4931     Journal = {Molecular Simulation},
4932     Number = {1},
4933     Pages = {11-20},
4934     Title = {A Comparison of Particle-Particle, Particle-Mesh and Ewald Methods for Calculating Electrostatic Interactions in Periodic Molecular-Systems},
4935     Uri = {<Go to ISI>://A1994QF46400002},
4936     Volume = {14},
4937     Year = {1994}}
4938 tim 2999
4939 gezelter 3302 @book{Marion1990,
4940     Address = {New York},
4941     Author = {J.~B. Marion},
4942     Edition = {2rd},
4943     Publisher = {Academic Press},
4944     Title = {Classical Dynamics of Particles and Systems},
4945     Year = {1990}}
4946 tim 2999
4947 gezelter 3302 @article{Marrink1994,
4948     Abstract = {To obtain insight in the process of water permeation through a lipid
4949 tim 2999 membrane, we performed molecular dynamics simulations on a phospholipid
4950     (DPPC)/water system with atomic detail. Since the actual process
4951     of permeation is too slow to be studied directly, we deduced the
4952     permeation rate indirectly via computation of the free energy and
4953     diffusion rate profiles of a water molecule across the bilayer.
4954     We conclude that the permeation of water through a lipid membrane
4955     cannot be described adequately by a simple homogeneous solubility-diffusion
4956     model. Both the excess free energy and the diffusion rate strongly
4957     depend on the position in the membrane, as a result from the inhomogeneous
4958     nature of the membrane. The calculated excess free energy profile
4959     has a shallow slope and a maximum height of 26 kJ/mol. The diffusion
4960     rate is highest in the middle of the membrane where the lipid density
4961     is low. In the interfacial region almost all water molecules are
4962     bound by the lipid headgroups, and the diffusion turns out to be
4963     1 order of magnitude smaller. The total transport process is essentially
4964     determined by the free energy barrier. The rate-limiting step is
4965     the permeation through the dense part of the lipid tails, where
4966     the resistance is highest. We found a permeation rate of 7(+/-3)
4967     x 10(-2) cm/s at 350 K, comparable to experimental values for DPPC
4968     membranes, if corrected for the temperature of the simulation. Taking
4969     the inhomogeneity of the membrane into account, we define a new
4970     ''four-region'' model which seems to be more realistic than the
4971     ''two-phase'' solubility-diffusion model.},
4972 gezelter 3302 Annote = {Ng219 Times Cited:187 Cited References Count:25},
4973     Author = {S. J. Marrink and H. J. C. Berendsen},
4974     Issn = {0022-3654},
4975     Journal = {Journal of Physical Chemistry},
4976     Month = {Apr 14},
4977     Number = {15},
4978     Pages = {4155-4168},
4979     Title = {Simulation of Water Transport through a Lipid-Membrane},
4980     Uri = {<Go to ISI>://A1994NG21900040},
4981     Volume = {98},
4982     Year = {1994}}
4983 tim 2999
4984 gezelter 3302 @article{Marrink2004,
4985     Author = {S.~J. Marrink and A.~H. de~Vries and A.~E. Mark},
4986     Journal = {J. Phys. Chem. B},
4987     Pages = {750-760},
4988     Title = {Coarse Grained Model for Semiquantitative Lipid Simulations},
4989     Volume = {108},
4990     Year = {2004}}
4991 tim 2999
4992 gezelter 3302 @article{Marsden1998,
4993     Abstract = {This paper presents a geometric-variational approach to continuous
4994 tim 2999 and discrete mechanics and field theories. Using multisymplectic
4995     geometry, we show that the existence of the fundamental geometric
4996     structures as well as their preservation along solutions can be
4997     obtained directly from the variational principle. In particular,
4998     we prove that a unique multisymplectic structure is obtained by
4999     taking the derivative of an action function, and use this structure
5000     to prove covariant generalizations of conservation of symplecticity
5001     and Noether's theorem. Natural discretization schemes for PDEs,
5002     which have these important preservation properties, then follow
5003     by choosing a discrete action functional. In the case of mechanics,
5004     we recover the variational symplectic integrators of Veselov type,
5005     while for PDEs we obtain covariant spacetime integrators which conserve
5006     the corresponding discrete multisymplectic form as well as the discrete
5007     momentum mappings corresponding to symmetries. We show that the
5008     usual notion of symplecticity along an infinite-dimensional space
5009     of fields can be naturally obtained by making a spacetime split.
5010     All of the aspects of our method are demonstrated with a nonlinear
5011     sine-Gordon equation, including computational results and a comparison
5012     with other discretization schemes.},
5013 gezelter 3302 Annote = {154RH Times Cited:88 Cited References Count:36},
5014     Author = {J. E. Marsden and G. W. Patrick and S. Shkoller},
5015     Issn = {0010-3616},
5016     Journal = {Communications in Mathematical Physics},
5017     Month = {Dec},
5018     Number = {2},
5019     Pages = {351-395},
5020     Title = {Multisymplectic geometry, variational integrators, and nonlinear PDEs},
5021     Uri = {<Go to ISI>://000077902200006},
5022     Volume = {199},
5023     Year = {1998}}
5024 tim 2999
5025 gezelter 3302 @article{Matthey2004,
5026     Abstract = {PROTOMOL is a high-performance framework in C++ for rapid prototyping
5027 tim 2999 of novel algorithms for molecular dynamics and related applications.
5028     Its flexibility is achieved primarily through the use of inheritance
5029     and design patterns (object-oriented programming): Performance is
5030     obtained by using templates that enable generation of efficient
5031     code for sections critical to performance (generic programming).
5032     The framework encapsulates important optimizations that can be used
5033     by developers, such as parallelism in the force computation. Its
5034     design is based on domain analysis of numerical integrators for
5035     molecular dynamics (MD) and of fast solvers for the force computation,
5036     particularly due to electrostatic interactions. Several new and
5037     efficient algorithms are implemented in PROTOMOL. Finally, it is
5038     shown that PROTOMOL'S sequential performance is excellent when compared
5039     to a leading MD program, and that it scales well for moderate number
5040     of processors. Binaries and source codes for Windows, Linux, Solaris,
5041     IRIX, HP-UX, and AIX platforms are available under open source license
5042     at http://protomol.sourceforge.net.},
5043 gezelter 3302 Annote = {860EP Times Cited:2 Cited References Count:52},
5044     Author = {T. Matthey and T. Cickovski and S. Hampton and A. Ko and Q. Ma and M. Nyerges and T. Raeder and T. Slabach and J. A. Izaguirre},
5045     Issn = {0098-3500},
5046     Journal = {Acm Transactions on Mathematical Software},
5047     Month = {Sep},
5048     Number = {3},
5049     Pages = {237-265},
5050     Title = {ProtoMol, an object-oriented framework for prototyping novel algorithms for molecular dynamics},
5051     Uri = {<Go to ISI>://000224325600001},
5052     Volume = {30},
5053     Year = {2004}}
5054 tim 2999
5055 gezelter 3302 @article{McLachlan1993,
5056     Author = {R.~I McLachlan},
5057     Journal = {prl},
5058     Pages = {3043-3046},
5059     Title = {Explicit Lie-Poisson integration and the Euler equations},
5060     Volume = {71},
5061     Year = {1993}}
5062 tim 2999
5063 gezelter 3302 @article{McLachlan1998,
5064     Abstract = {We give a survey and some new examples of generating functions for
5065 tim 2999 systems with symplectic structure, systems with a first integral,
5066     systems that preserve volume, and systems with symmetries and/or
5067     time-reversing symmetries. Both ODEs and maps are treated, and we
5068     discuss how generating functions may be used in the structure-preserving
5069     numerical integration of ODEs with the above properties.},
5070 gezelter 3302 Annote = {Yt049 Times Cited:7 Cited References Count:26},
5071     Author = {R. I. McLachlan and G. R. W. Quispel},
5072     Issn = {0167-2789},
5073     Journal = {Physica D},
5074     Month = {Jan 15},
5075     Number = {1-2},
5076     Pages = {298-309},
5077     Title = {Generating functions for dynamical systems with symmetries, integrals, and differential invariants},
5078     Uri = {<Go to ISI>://000071558900021},
5079     Volume = {112},
5080     Year = {1998}}
5081 tim 2999
5082 gezelter 3302 @article{McLachlan1998a,
5083     Abstract = {We consider properties of flows, the relationships between them, and
5084 tim 2999 whether numerical integrators can be made to preserve these properties.
5085     This is done in the context of automorphisms and antiautomorphisms
5086     of a certain group generated by maps associated to vector fields.
5087     This new framework unifies several known constructions. We also
5088     use the concept of #covariance# of a numerical method with respect
5089     to a group of coordinate transformations. The main application is
5090     to explore the relationship between spatial symmetries, reversing
5091     symmetries, and time symmetry of flows and numerical integrators.},
5092 gezelter 3302 Annote = {Zc449 Times Cited:14 Cited References Count:33},
5093     Author = {R. I. McLachlan and G. R. W. Quispel and G. S. Turner},
5094     Issn = {0036-1429},
5095     Journal = {Siam Journal on Numerical Analysis},
5096     Month = {Apr},
5097     Number = {2},
5098     Pages = {586-599},
5099     Title = {Numerical integrators that preserve symmetries and reversing symmetries},
5100     Uri = {<Go to ISI>://000072580500010},
5101     Volume = {35},
5102     Year = {1998}}
5103 tim 2999
5104 gezelter 3302 @article{McLachlan2005,
5105     Abstract = {In this paper we revisit the Moser-Veselov description of the free
5106 tim 2999 rigid body in body coordinates, which, in the 3 x 3 case, can be
5107     implemented as an explicit, second-order, integrable approximation
5108     of the continuous solution. By backward error analysis, we study
5109     the modified vector field which is integrated exactly by the discrete
5110     algorithm. We deduce that the discrete Moser-Veselov (DMV) is well
5111     approximated to higher order by time reparametrizations of the continuous
5112     equations (modified vector field). We use the modified vector field
5113     to scale the initial data of the DMV to improve the order of the
5114     approximation and show the equivalence of the DMV and the RATTLE
5115     algorithm. Numerical integration with these preprocessed initial
5116     data is several orders of magnitude more accurate than the original
5117     DMV and RATTLE approach.},
5118 gezelter 3302 Annote = {911NS Times Cited:0 Cited References Count:14},
5119     Author = {R. I. McLachlan and A. Zanna},
5120     Issn = {1615-3375},
5121     Journal = {Foundations of Computational Mathematics},
5122     Month = {Feb},
5123     Number = {1},
5124     Pages = {87-123},
5125     Title = {The discrete Moser-Veselov algorithm for the free rigid body, revisited},
5126     Uri = {<Go to ISI>://000228011900003},
5127     Volume = {5},
5128     Year = {2005}}
5129 tim 2999
5130 gezelter 3302 @article{Meineke2005,
5131     Abstract = {OOPSE is a new molecular dynamics simulation program that is capable
5132 tim 2999 of efficiently integrating equations of motion for atom types with
5133     orientational degrees of freedom (e.g. #sticky# atoms and point
5134     dipoles). Transition metals can also be simulated using the embedded
5135     atom method (EAM) potential included in the code. Parallel simulations
5136     are carried out using the force-based decomposition method. Simulations
5137     are specified using a very simple C-based meta-data language. A
5138     number of advanced integrators are included, and the basic integrator
5139     for orientational dynamics provides substantial improvements over
5140     older quaternion-based schemes. (C) 2004 Wiley Periodicals, Inc.},
5141 gezelter 3302 Annote = {891CF Times Cited:1 Cited References Count:56},
5142     Author = {M. A. Meineke and C. F. Vardeman and T. Lin and C. J. Fennell and J. D. Gezelter},
5143     Issn = {0192-8651},
5144     Journal = {Journal of Computational Chemistry},
5145     Month = {Feb},
5146     Number = {3},
5147     Pages = {252-271},
5148     Title = {OOPSE: An object-oriented parallel simulation engine for molecular dynamics},
5149     Uri = {<Go to ISI>://000226558200006},
5150     Volume = {26},
5151     Year = {2005}}
5152 tim 2999
5153 gezelter 3302 @article{Melchionna1993,
5154     Abstract = {In this paper we write down equations of motion (following the approach
5155 tim 2999 pioneered by Hoover) for an exact isothermal-isobaric molecular
5156     dynamics simulation, and we extend them to multiple thermostating
5157     rates, to a shape-varying cell and to molecular systems, coherently
5158     with the previous 'extended system method'. An integration scheme
5159     is proposed together with a numerical illustration of the method.},
5160 gezelter 3302 Annote = {Kq355 Times Cited:172 Cited References Count:17},
5161     Author = {S. Melchionna and G. Ciccotti and B. L. Holian},
5162     Issn = {0026-8976},
5163     Journal = {Molecular Physics},
5164     Month = {Feb 20},
5165     Number = {3},
5166     Pages = {533-544},
5167     Title = {Hoover Npt Dynamics for Systems Varying in Shape and Size},
5168     Uri = {<Go to ISI>://A1993KQ35500002},
5169     Volume = {78},
5170     Year = {1993}}
5171 tim 2999
5172 gezelter 3302 @article{Memmer2002,
5173     Abstract = {The phase behaviour of achiral banana-shaped molecules was studied
5174 tim 2999 by computer simulation. The banana-shaped molecules were described
5175     by model intermolecular interactions based on the Gay-Berne potential.
5176     The characteristic molecular structure was considered by joining
5177     two calamitic Gay-Berne particles through a bond to form a biaxial
5178     molecule of point symmetry group C-2v with a suitable bending angle.
5179     The dependence on temperature of systems of N=1024 rigid banana-shaped
5180     molecules with bending angle phi=140degrees has been studied by
5181     means of Monte Carlo simulations in the isobaric-isothermal ensemble
5182     (NpT). On cooling an isotropic system, two phase transitions characterized
5183     by phase transition enthalpy, entropy and relative volume change
5184     have been observed. For the first time by computer simulation of
5185     a many-particle system of banana-shaped molecules, at low temperature
5186     an untilted smectic phase showing a global phase biaxiality and
5187     a spontaneous local polarization in the layers, i.e. a local polar
5188     arrangement of the steric dipoles, with an antiferroelectric-like
5189     superstructure could be proven, a phase structure which recently
5190     has been discovered experimentally. Additionally, at intermediate
5191     temperature a nematic-like phase has been proved, whereas close
5192     to the transition to the smectic phase hints of a spontaneous achiral
5193     symmetry breaking have been determined. Here, in the absence of
5194     a layered structure a helical superstructure has been formed. All
5195     phases have been characterized by visual representations of selected
5196     configurations, scalar and pseudoscalar correlation functions, and
5197     order parameters.},
5198 gezelter 3302 Annote = {531HT Times Cited:12 Cited References Count:37},
5199     Author = {R. Memmer},
5200     Issn = {0267-8292},
5201     Journal = {Liquid Crystals},
5202     Month = {Apr},
5203     Number = {4},
5204     Pages = {483-496},
5205     Title = {Liquid crystal phases of achiral banana-shaped molecules: a computer simulation study},
5206     Uri = {<Go to ISI>://000174410500001},
5207     Volume = {29},
5208     Year = {2002}}
5209 tim 2999
5210 gezelter 3302 @article{Metropolis1949,
5211     Author = {N. Metropolis and S. Ulam},
5212     Journal = {J. Am. Stat. Ass.},
5213     Pages = {335-341},
5214     Title = {The $\mbox{Monte Carlo}$ Method},
5215     Volume = {44},
5216     Year = {1949}}
5217 tim 2999
5218 gezelter 3302 @article{Mielke2004,
5219     Abstract = {The torque generated by RNA polymerase as it tracks along double-stranded
5220 tim 2999 DNA can potentially induce long-range structural deformations integral
5221     to mechanisms of biological significance in both prokaryotes and
5222     eukaryotes. In this paper, we introduce a dynamic computer model
5223     for investigating this phenomenon. Duplex DNA is represented as
5224     a chain of hydrodynamic beads interacting through potentials of
5225     linearly elastic stretching, bending, and twisting, as well as excluded
5226     volume. The chain, linear when relaxed, is looped to form two open
5227     but topologically constrained subdomains. This permits the dynamic
5228     introduction of torsional stress via a centrally applied torque.
5229     We simulate by Brownian dynamics the 100 mus response of a 477-base
5230     pair B-DNA template to the localized torque generated by the prokaryotic
5231     transcription ensemble. Following a sharp rise at early times, the
5232     distributed twist assumes a nearly constant value in both subdomains,
5233     and a succession of supercoiling deformations occurs as superhelical
5234     stress is increasingly partitioned to writhe. The magnitude of writhe
5235     surpasses that of twist before also leveling off when the structure
5236     reaches mechanical equilibrium with the torsional load. Superhelicity
5237     is simultaneously right handed in one subdomain and left handed
5238     in the other, as predicted by the #transcription-induced##twin-supercoiled-domain#
5239     model [L. F. Liu and J. C. Wang, Proc. Natl. Acad. Sci. U.S.A. 84,
5240     7024 (1987)]. The properties of the chain at the onset of writhing
5241     agree well with predictions from theory, and the generated stress
5242     is ample for driving secondary structural transitions in physiological
5243     DNA. (C) 2004 American Institute of Physics.},
5244 gezelter 3302 Annote = {861ZF Times Cited:3 Cited References Count:34},
5245     Author = {S. P. Mielke and W. H. Fink and V. V. Krishnan and N. Gronbech-Jensen and C. J. Benham},
5246     Issn = {0021-9606},
5247     Journal = {Journal of Chemical Physics},
5248     Month = {Oct 22},
5249     Number = {16},
5250     Pages = {8104-8112},
5251     Title = {Transcription-driven twin supercoiling of a DNA loop: A Brownian dynamics study},
5252     Uri = {<Go to ISI>://000224456500064},
5253     Volume = {121},
5254     Year = {2004}}
5255 tim 2746
5256 gezelter 3302 @article{Naess2001,
5257     Abstract = {The three Eulerian angles constitute the classical choice of generalized
5258 tim 2999 coordinates used to describe the three degrees of rotational freedom
5259     of a rigid body, but it has long been known that this choice yields
5260     singular equations of motion. The latter is also true when Eulerian
5261     angles are used in Brownian dynamics analyses of the angular orientation
5262     of single rigid bodies and segmented polymer chains. Starting from
5263     kinetic theory we here show that by instead employing the three
5264     components of Cartesian rotation vectors as the generalized coordinates
5265     describing angular orientation, no singularity appears in the configuration
5266     space diffusion equation and the associated Brownian dynamics algorithm.
5267     The suitability of Cartesian rotation vectors in Brownian dynamics
5268     simulations of segmented polymer chains with spring-like or ball-socket
5269     joints is discussed. (C) 2001 Elsevier Science B.V. All rights reserved.},
5270 gezelter 3302 Annote = {433TA Times Cited:7 Cited References Count:19},
5271     Author = {S. N. Naess and H. M. Adland and A. Mikkelsen and A. Elgsaeter},
5272     Issn = {0378-4371},
5273     Journal = {Physica A},
5274     Month = {May 15},
5275     Number = {3-4},
5276     Pages = {323-339},
5277     Title = {Brownian dynamics simulation of rigid bodies and segmented polymer chains. Use of Cartesian rotation vectors as the generalized coordinates describing angular orientations},
5278     Uri = {<Go to ISI>://000168774800005},
5279     Volume = {294},
5280     Year = {2001}}
5281 tim 2746
5282 gezelter 3302 @article{Niori1996,
5283     Abstract = {The synthesis of a banana-shaped molecule is reported and it is found
5284 tim 2999 that the smectic phase which it forms is biaxial with the molecules
5285     packed in the best,direction into a layer. Because of this characteristic
5286     packing, spontaneous polarization appears parallel to the layer
5287     and switches on reversal of an applied electric field. This is the
5288     first obvious example of ferroelectricity in an achiral smectic
5289     phase and is ascribed to the C-2v symmetry of the molecular packing.},
5290 gezelter 3302 Annote = {Ux855 Times Cited:447 Cited References Count:18},
5291     Author = {T. Niori and T. Sekine and J. Watanabe and T. Furukawa and H. Takezoe},
5292     Issn = {0959-9428},
5293     Journal = {Journal of Materials Chemistry},
5294     Month = {Jul},
5295     Number = {7},
5296     Pages = {1231-1233},
5297     Title = {Distinct ferroelectric smectic liquid crystals consisting of banana shaped achiral molecules},
5298     Uri = {<Go to ISI>://A1996UX85500025},
5299     Volume = {6},
5300     Year = {1996}}
5301 tim 2999
5302 gezelter 3302 @article{Noguchi2002,
5303     Abstract = {We Studied the structural changes of bilayer vesicles induced by mechanical
5304 tim 2999 forces using a Brownian dynamics simulation. Two nanoparticles,
5305     which interact repulsively with amphiphilic molecules, are put inside
5306     a vesicle. The position of one nanoparticle is fixed, and the other
5307     is moved by a constant force as in optical-trapping experiments.
5308     First, the pulled vesicle stretches into a pear or tube shape. Then
5309     the inner monolayer in the tube-shaped region is deformed, and a
5310     cylindrical structure is formed between two vesicles. After stretching
5311     the cylindrical region, fission occurs near the moved vesicle. Soon
5312     after this the cylindrical region shrinks. The trapping force similar
5313     to 100 pN is needed to induce the formation of the cylindrical structure
5314     and fission.},
5315 gezelter 3302 Annote = {Part 1 568PX Times Cited:5 Cited References Count:39},
5316     Author = {H. Noguchi and M. Takasu},
5317     Issn = {1063-651X},
5318     Journal = {Physical Review E},
5319     Month = {may},
5320     Number = {5},
5321     Pages = {-},
5322     Title = {Structural changes of pulled vesicles: A Brownian dynamics simulation},
5323     Uri = {<Go to ISI>://000176552300084},
5324     Volume = {65},
5325     Year = {2002}}
5326 tim 2746
5327 gezelter 3302 @article{Noguchi2001,
5328     Abstract = {We studied the fusion dynamics of vesicles using a Brownian dynamics
5329 tim 2999 simulation. Amphiphilic molecules spontaneously form vesicles with
5330     a bilayer structure. Two vesicles come into contact and form a stalk
5331     intermediate, in which a necklike structure only connects the outer
5332     monolayers, as predicted by the stalk hypothesis. We have found
5333     a new pathway of pore opening from stalks at high temperature: the
5334     elliptic stalk bends and contact between the ends of the arc-shaped
5335     stalk leads to pore opening. On the other hand, we have clarified
5336     that the pore-opening process at low temperature agrees with the
5337     modified stalk model: a pore is induced by contact between the inner
5338     monolayers inside the stalk. (C) 2001 American Institute of Physics.},
5339 gezelter 3302 Annote = {491UW Times Cited:48 Cited References Count:25},
5340     Author = {H. Noguchi and M. Takasu},
5341     Issn = {0021-9606},
5342     Journal = {Journal of Chemical Physics},
5343     Month = {Nov 22},
5344     Number = {20},
5345     Pages = {9547-9551},
5346     Title = {Fusion pathways of vesicles: A Brownian dynamics simulation},
5347     Uri = {<Go to ISI>://000172129300049},
5348     Volume = {115},
5349     Year = {2001}}
5350 tim 2746
5351 gezelter 3302 @book{Olver1986,
5352     Address = {New York},
5353     Author = {P.J. Olver},
5354     Publisher = {Springer},
5355     Title = {Applications of Lie groups to differential equatitons},
5356     Year = {1986}}
5357 tim 2999
5358 gezelter 3302 @article{Omelyan1998,
5359     Abstract = {A revised version of the quaternion approach for numerical integration
5360 tim 2999 of the equations of motion for rigid polyatomic molecules is proposed.
5361     The modified approach is based on a formulation of the quaternion
5362     dynamics with constraints. This allows one to resolve the rigidity
5363     problem rigorously using constraint forces. It is shown that the
5364     procedure for preservation of molecular rigidity can be realized
5365     particularly simply within the Verlet algorithm in velocity form.
5366     We demonstrate that the method presented leads to an improved numerical
5367     stability with respect to the usual quaternion rescaling scheme
5368     and it is roughly as good as the cumbersome atomic-constraint technique.
5369     (C) 1998 American Institute of Physics.},
5370 gezelter 3302 Annote = {Yx279 Times Cited:12 Cited References Count:28},
5371     Author = {I. P. Omelyan},
5372     Issn = {0894-1866},
5373     Journal = {Computers in Physics},
5374     Month = {Jan-Feb},
5375     Number = {1},
5376     Pages = {97-103},
5377     Title = {On the numerical integration of motion for rigid polyatomics: The modified quaternion approach},
5378     Uri = {<Go to ISI>://000072024300025},
5379     Volume = {12},
5380     Year = {1998}}
5381 tim 2999
5382 gezelter 3302 @article{Omelyan1998a,
5383     Abstract = {An algorithm for numerical integration of the rigid-body equations
5384 tim 2999 of motion is proposed. The algorithm uses the leapfrog scheme and
5385     the quantities involved are angular velocities and orientational
5386     variables that can be expressed in terms of either principal axes
5387     or quaternions. Due to specific features of the algorithm, orthonormality
5388     and unit norms of the orientational variables are integrals of motion,
5389     despite an approximate character of the produced trajectories. It
5390     is shown that the method presented appears to be the most efficient
5391     among all such algorithms known.},
5392 gezelter 3302 Annote = {101XL Times Cited:8 Cited References Count:22},
5393     Author = {I. P. Omelyan},
5394     Issn = {1063-651X},
5395     Journal = {Physical Review E},
5396     Month = {Jul},
5397     Number = {1},
5398     Pages = {1169-1172},
5399     Title = {Algorithm for numerical integration of the rigid-body equations of motion},
5400     Uri = {<Go to ISI>://000074893400151},
5401     Volume = {58},
5402     Year = {1998}}
5403 tim 2999
5404 gezelter 3302 @article{Owren1992,
5405     Abstract = {Continuous, explicit Runge-Kutta methods with the minimal number of
5406 tim 2999 stages are considered. These methods are continuously differentiable
5407     if and only if one of the stages is the FSAL evaluation. A characterization
5408     of a subclass of these methods is developed for orders 3, 4, and
5409     5. It is shown how the free parameters of these methods can be used
5410     either to minimize the continuous truncation error coefficients
5411     or to maximize the stability region. As a representative for these
5412     methods the fifth-order method with minimized error coefficients
5413     is chosen, supplied with an error estimation method, and analysed
5414     by using the DETEST software. The results are compared with a similar
5415     implementation of the Dormand-Prince 5(4) pair with interpolant,
5416     showing a significant advantage in the new method for the chosen
5417     problems.},
5418 gezelter 3302 Annote = {Ju936 Times Cited:25 Cited References Count:20},
5419     Author = {B. Owren and M. Zennaro},
5420     Issn = {0196-5204},
5421     Journal = {Siam Journal on Scientific and Statistical Computing},
5422     Month = {Nov},
5423     Number = {6},
5424     Pages = {1488-1501},
5425     Title = {Derivation of Efficient, Continuous, Explicit Runge-Kutta Methods},
5426     Uri = {<Go to ISI>://A1992JU93600013},
5427     Volume = {13},
5428     Year = {1992}}
5429 tim 2999
5430 gezelter 3302 @article{Palacios1998,
5431     Abstract = {The stochastic Landau-Lifshitz-Gilbert equation of motion for a classical
5432 tim 2999 magnetic moment is numerically solved (properly observing the customary
5433     interpretation of it as a Stratonovich stochastic differential equation),
5434     in order to study the dynamics of magnetic nanoparticles. The corresponding
5435     Langevin-dynamics approach allows for the study of the fluctuating
5436     trajectories of individual magnetic moments, where we have encountered
5437     remarkable phenomena in the overbarrier rotation process, such as
5438     crossing-back or multiple crossing of the potential barrier, rooted
5439     in the gyromagnetic nature of the system. Concerning averaged quantities,
5440     we study the linear dynamic response of the archetypal ensemble
5441     of noninteracting classical magnetic moments with axially symmetric
5442     magnetic anisotropy. The results are compared with different analytical
5443     expressions used to model the relaxation of nanoparticle ensembles,
5444     assessing their accuracy. It has been found that, among a number
5445     of heuristic expressions for the linear dynamic susceptibility,
5446     only the simple formula proposed by Shliomis and Stepanov matches
5447     the coarse features of the susceptibility reasonably. By comparing
5448     the numerical results with the asymptotic formula of Storonkin {Sov.
5449     Phys. Crystallogr. 30, 489 (1985) [Kristallografiya 30, 841 (1985)]},
5450     the effects of the intra-potential-well relaxation modes on the
5451     low-temperature longitudinal dynamic response have been assessed,
5452     showing their relatively small reflection in the susceptibility
5453     curves but their dramatic influence on the phase shifts. Comparison
5454     of the numerical results with the exact zero-damping expression
5455     for the transverse susceptibility by Garanin, Ishchenko, and Panina
5456     {Theor. Math. Phys. (USSR) 82, 169 (1990) [Teor. Mat. Fit. 82, 242
5457     (1990)]}, reveals a sizable contribution of the spread of the precession
5458     frequencies of the magnetic moment in the anisotropy field to the
5459     dynamic response at intermediate-to-high temperatures. [S0163-1829
5460     (98)00446-9].},
5461 gezelter 3302 Annote = {146XW Times Cited:66 Cited References Count:45},
5462     Author = {J. L. Garcia-Palacios and F. J. Lazaro},
5463     Issn = {0163-1829},
5464     Journal = {Physical Review B},
5465     Month = {Dec 1},
5466     Number = {22},
5467     Pages = {14937-14958},
5468     Title = {Langevin-dynamics study of the dynamical properties of small magnetic particles},
5469     Uri = {<Go to ISI>://000077460000052},
5470     Volume = {58},
5471     Year = {1998}}
5472 tim 2746
5473 gezelter 3302 @article{Parr1995,
5474     Abstract = {Despite the parsing power of LR/LALR algorithms, e.g. YACC, programmers
5475 tim 2999 often choose to write recursive-descent parsers by hand to obtain
5476     increased flexibility, better error handling, and ease of debugging.
5477     We introduce ANTLR, a public-domain parser generator that combines
5478     the flexibility of hand-coded parsing with the convenience of a
5479     parser generator, which is a component of PCCTS. ANTLR has many
5480     features that make it easier to use than other language tools. Most
5481     important, ANTLR provides predicates which let the programmer systematically
5482     direct the parse via arbitrary expressions using semantic and syntactic
5483     context; in practice, the use of predicates eliminates the need
5484     to hand-tweak the ANTLR output, even for difficult parsing problems.
5485     ANTLR also integrates the description of lexical and syntactic analysis,
5486     accepts LL(k) grammars for k > 1 with extended BNF notation, and
5487     can automatically generate abstract syntax trees. ANTLR is widely
5488     used, with over 1000 registered industrial and academic users in
5489     37 countries. It has been ported to many popular systems such as
5490     the PC, Macintosh, and a variety of UNIX platforms; a commercial
5491     C++ front-end has been developed as a result of one of our industrial
5492     collaborations.},
5493 gezelter 3302 Annote = {Rk104 Times Cited:19 Cited References Count:10},
5494     Author = {T. J. Parr and R. W. Quong},
5495     Issn = {0038-0644},
5496     Journal = {Software-Practice \& Experience},
5497     Month = {Jul},
5498     Number = {7},
5499     Pages = {789-810},
5500     Title = {Antlr - a Predicated-Ll(K) Parser Generator},
5501     Uri = {<Go to ISI>://A1995RK10400004},
5502     Volume = {25},
5503     Year = {1995}}
5504 tim 2999
5505 gezelter 3302 @article{Pastor1988,
5506     Annote = {T1302 Times Cited:61 Cited References Count:26},
5507     Author = {R. W. Pastor and B. R. Brooks and A. Szabo},
5508     Issn = {0026-8976},
5509     Journal = {Molecular Physics},
5510     Month = {Dec 20},
5511     Number = {6},
5512     Pages = {1409-1419},
5513     Title = {An Analysis of the Accuracy of Langevin and Molecular-Dynamics Algorithms},
5514     Uri = {<Go to ISI>://A1988T130200011},
5515     Volume = {65},
5516     Year = {1988}}
5517 tim 2746
5518 gezelter 3302 @article{Pelzl1999,
5519     Annote = {220RC Times Cited:313 Cited References Count:49},
5520     Author = {G. Pelzl and S. Diele and W. Weissflog},
5521     Issn = {0935-9648},
5522     Journal = {Advanced Materials},
5523     Month = {Jul 5},
5524     Number = {9},
5525     Pages = {707-724},
5526     Title = {Banana-shaped compounds - A new field of liquid crystals},
5527     Uri = {<Go to ISI>://000081680400007},
5528     Volume = {11},
5529     Year = {1999}}
5530 tim 2999
5531 gezelter 3302 @article{Perram1985,
5532     Annote = {Akb93 Times Cited:71 Cited References Count:12},
5533     Author = {J. W. Perram and M. S. Wertheim},
5534     Issn = {0021-9991},
5535     Journal = {Journal of Computational Physics},
5536     Number = {3},
5537     Pages = {409-416},
5538     Title = {Statistical-Mechanics of Hard Ellipsoids .1. Overlap Algorithm and the Contact Function},
5539     Uri = {<Go to ISI>://A1985AKB9300008},
5540     Volume = {58},
5541     Year = {1985}}
5542 tim 2999
5543 gezelter 3302 @article{Rotne1969,
5544     Author = {F. Perrin},
5545     Journal = {J. Chem. Phys.},
5546     Pages = {4831-4837},
5547     Title = {Variational treatment of hydrodynamic interaction in polymers},
5548     Volume = {50},
5549     Year = {1969}}
5550 tim 2999
5551 gezelter 3302 @article{Perrin1936,
5552     Author = {F. Perrin},
5553     Journal = {J. Phys. Radium},
5554     Pages = {1-11},
5555     Title = {Mouvement brownien d'un ellipsoid(II). Rotation libre et depolarisation des fluorescences. Translation et diffusion de moleculese ellipsoidales},
5556     Volume = {7},
5557     Year = {1936}}
5558 tim 2999
5559 gezelter 3302 @article{Perrin1934,
5560     Author = {F. Perrin},
5561     Journal = {J. Phys. Radium},
5562     Pages = {497-511},
5563     Title = {Mouvement brownien d'un ellipsoid(I). Dispersion dielectrique pour des molecules ellipsoidales},
5564     Volume = {5},
5565     Year = {1934}}
5566 tim 2999
5567 gezelter 3302 @article{Petrache2000,
5568     Author = {H.~I. Petrache and S.~W. Dodd and M.~F. Brown},
5569     Journal = {Biophysical Journal},
5570     Pages = {3172-3192},
5571     Title = {Area per Lipid and Acyl Length Distributions in Fluid Phosphatidylcholines Determined by $^2\text{H}$ {\sc nmr} Spectroscopy},
5572     Volume = {79},
5573     Year = {2000}}
5574 tim 2999
5575 gezelter 3302 @article{Petrache1998,
5576     Abstract = {X-ray diffraction data taken at high instrumental resolution were
5577 tim 2999 obtained for EPC and DMPC under various osmotic pressures, primarily
5578     at T = 30 degrees C. The headgroup thickness D-HH was obtained from
5579     relative electron density profiles. By using volumetric results
5580     and by comparing to gel phase DPPC we obtain areas A(EPC)(F) = 69.4
5581     +/- 1.1 Angstrom(2) and A(DMPC)(F) = 59.7 +/- 0.2 Angstrom(2). The
5582     analysis also gives estimates for the areal compressibility K-A.
5583     The A(F) results lead to other structural results regarding membrane
5584     thickness and associated waters. Using the recently determined absolute
5585     electrons density profile of DPPC, the AF results also lead to absolute
5586     electron density profiles and absolute continuous transforms \F(q)\
5587     for EPC and DMPC, Limited measurements of temperature dependence
5588     show directly that fluctuations increase with increasing temperature
5589     and that a small decrease in bending modulus K-c accounts for the
5590     increased water spacing reported by Simon et al. (1995) Biophys.
5591     J. 69, 1473-1483. (C) 1998 Elsevier Science Ireland Ltd. All rights
5592     reserved.},
5593 gezelter 3302 Annote = {130AT Times Cited:98 Cited References Count:39},
5594     Author = {H. I. Petrache and S. Tristram-Nagle and J. F. Nagle},
5595     Issn = {0009-3084},
5596     Journal = {Chemistry and Physics of Lipids},
5597     Month = {Sep},
5598     Number = {1},
5599     Pages = {83-94},
5600     Title = {Fluid phase structure of EPC and DMPC bilayers},
5601     Uri = {<Go to ISI>://000076497600007},
5602     Volume = {95},
5603     Year = {1998}}
5604 tim 2999
5605 gezelter 3302 @article{Powles1973,
5606     Author = {J.~G. Powles},
5607     Journal = {Advan. Phys.},
5608     Pages = {1-56},
5609     Title = {A general ellipsoid can not always serve as a modle for the rotational diffusion properties of arbitrary shaped rigid molecules},
5610     Volume = {22},
5611     Year = {1973}}
5612 tim 2999
5613 gezelter 3302 @article{Recio2004,
5614     Abstract = {Protein recognition is one of the most challenging and intriguing
5615 tim 2999 problems in structural biology. Despite all the available structural,
5616     sequence and biophysical information about protein-protein complexes,
5617     the physico-chemical patterns, if any, that make a protein surface
5618     likely to be involved in protein-protein interactions, remain elusive.
5619     Here, we apply protein docking simulations and analysis of the interaction
5620     energy landscapes to identify protein-protein interaction sites.
5621     The new protocol for global docking based on multi-start global
5622     energy optimization of an allatom model of the ligand, with detailed
5623     receptor potentials and atomic solvation parameters optimized in
5624     a training set of 24 complexes, explores the conformational space
5625     around the whole receptor without restrictions. The ensembles of
5626     the rigid-body docking solutions generated by the simulations were
5627     subsequently used to project the docking energy landscapes onto
5628     the protein surfaces. We found that highly populated low-energy
5629     regions consistently corresponded to actual binding sites. The procedure
5630     was validated on a test set of 21 known protein-protein complexes
5631     not used in the training set. As much as 81% of the predicted high-propensity
5632     patch residues were located correctly in the native interfaces.
5633     This approach can guide the design of mutations on the surfaces
5634     of proteins, provide geometrical details of a possible interaction,
5635     and help to annotate protein surfaces in structural proteomics.
5636     (C) 2003 Elsevier Ltd. All rights reserved.},
5637 gezelter 3302 Annote = {763GQ Times Cited:21 Cited References Count:59},
5638     Author = {J. Fernandez-Recio and M. Totrov and R. Abagyan},
5639     Issn = {0022-2836},
5640     Journal = {Journal of Molecular Biology},
5641     Month = {Jan 16},
5642     Number = {3},
5643     Pages = {843-865},
5644     Title = {Identification of protein-protein interaction sites from docking energy landscapes},
5645     Uri = {<Go to ISI>://000188066900016},
5646     Volume = {335},
5647     Year = {2004}}
5648 tim 2746
5649 gezelter 3302 @article{Reddy2006,
5650     Abstract = {An overview on the recent developments in the field of liquid crystalline
5651 tim 2999 bent-core molecules (so-called banana liquid crystals) is given.
5652     After some basic issues, dealing with general aspects of the systematisation
5653     of the mesophases, development of polar order and chirality in this
5654     class of LC systems and explaining some general structure-property
5655     relationships, we focus on fascinating new developments in this
5656     field, such as modulated, undulated and columnar phases, so-called
5657     B7 phases, phase biaxiality, ferroelectric and antiferroelectric
5658     polar order in smectic and columnar phases, amplification and switching
5659     of chirality and the spontaneous formation of superstructural and
5660     supramolecular chirality.},
5661 gezelter 3302 Annote = {021NS Times Cited:2 Cited References Count:316},
5662     Author = {R. A. Reddy and C. Tschierske},
5663     Issn = {0959-9428},
5664     Journal = {Journal of Materials Chemistry},
5665     Number = {10},
5666     Pages = {907-961},
5667     Title = {Bent-core liquid crystals: polar order, superstructural chirality and spontaneous desymmetrisation in soft matter systems},
5668     Uri = {<Go to ISI>://000235990500001},
5669     Volume = {16},
5670     Year = {2006}}
5671 tim 2999
5672 gezelter 3302 @article{Reich1999,
5673     Abstract = {Backward error analysis has become an important tool for understanding
5674 tim 2999 the long time behavior of numerical integration methods. This is
5675     true in particular for the integration of Hamiltonian systems where
5676     backward error analysis can be used to show that a symplectic method
5677     will conserve energy over exponentially long periods of time. Such
5678     results are typically based on two aspects of backward error analysis:
5679     (i) It can be shown that the modified vector fields have some qualitative
5680     properties which they share with the given problem and (ii) an estimate
5681     is given for the difference between the best interpolating vector
5682     field and the numerical method. These aspects have been investigated
5683     recently, for example, by Benettin and Giorgilli in [J. Statist.
5684     Phys., 74 (1994), pp. 1117-1143], by Hairer in [Ann. Numer. Math.,
5685     1 (1994), pp. 107-132], and by Hairer and Lubich in [Numer. Math.,
5686     76 (1997), pp. 441-462]. In this paper we aim at providing a unifying
5687     framework and a simplification of the existing results and corresponding
5688     proofs. Our approach to backward error analysis is based on a simple
5689     recursive definition of the modified vector fields that does not
5690     require explicit Taylor series expansion of the numerical method
5691     and the corresponding flow maps as in the above-cited works. As
5692     an application we discuss the long time integration of chaotic Hamiltonian
5693     systems and the approximation of time averages along numerically
5694     computed trajectories.},
5695 gezelter 3302 Annote = {237HV Times Cited:43 Cited References Count:41},
5696     Author = {S. Reich},
5697     Issn = {0036-1429},
5698     Journal = {Siam Journal on Numerical Analysis},
5699     Month = {Sep 8},
5700     Number = {5},
5701     Pages = {1549-1570},
5702     Title = {Backward error analysis for numerical integrators},
5703     Uri = {<Go to ISI>://000082650600010},
5704     Volume = {36},
5705     Year = {1999}}
5706 tim 2999
5707 gezelter 3302 @article{Ros2005,
5708     Abstract = {The recent literature in the field of liquid crystals shows that banana-shaped
5709 tim 2999 mesogenic materials represent a bewitching and stimulating field
5710     of research that is interesting both academically and in terms of
5711     applications. Numerous topics are open to investigation in this
5712     area because of the rich phenomenology and new possibilities that
5713     these materials offer. The principal concepts in this area are reviewed
5714     along with recent results. In addition, new directions to stimulate
5715     further research activities are highlighted.},
5716 gezelter 3302 Annote = {990XA Times Cited:3 Cited References Count:72},
5717     Author = {M. B. Ros and J. L. Serrano and M. R. {de la Fuente} and C. L. Folcia},
5718     Issn = {0959-9428},
5719     Journal = {Journal of Materials Chemistry},
5720     Number = {48},
5721     Pages = {5093-5098},
5722     Title = {Banana-shaped liquid crystals: a new field to explore},
5723     Uri = {<Go to ISI>://000233775500001},
5724     Volume = {15},
5725     Year = {2005}}
5726 tim 2999
5727 gezelter 3302 @article{Roux1991,
5728     Abstract = {The mobility of water, Na+. and K+ has been calculated inside a periodic
5729 tim 2999 poly-(L,D)-alanine beta-helix, a model for the interior of the gramicidin
5730     channel. Because of the different dynamical regimes for the three
5731     species (high barrier for Na+, low barrier for K+, almost free diffusion
5732     for water), different methods are used to calculate the mobilities.
5733     By use of activated dynamics and a potential of mean force determined
5734     previously (Roux, B.; Karplus, M. Biophys. J. 1991, 59, 961), the
5735     barrier crossing rate of Na+ ion is determined. The motion of Na+
5736     at the transition state is controlled by local interactions and
5737     collisions with the neighboring carbonyls and the two nearest water
5738     molecules. There are significant deviations from transition-state
5739     theory; the transmission coefficient is equal to 0.11. The water
5740     and K+ motions are found to be well described by a diffusive model;
5741     the motion of K+ appears to be controlled by the diffusion of water.
5742     The time-dependent friction functions of Na+ and K+ ions in the
5743     periodic beta-helix are calculated and analyzed by using a generalized
5744     Langevin equation approach. Both Na+ and K+ suffer many rapid collisions,
5745     and their dynamics is overdamped and noninertial. Thus, the selectivity
5746     sequence of ions in the beta-helix is not influenced strongly by
5747     their masses.},
5748 gezelter 3302 Annote = {Fr756 Times Cited:97 Cited References Count:65},
5749     Author = {B. Roux and M. Karplus},
5750     Issn = {0022-3654},
5751     Journal = {Journal of Physical Chemistry},
5752     Month = {Jun 13},
5753     Number = {12},
5754     Pages = {4856-4868},
5755     Title = {Ion-Transport in a Gramicidin-Like Channel - Dynamics and Mobility},
5756     Uri = {<Go to ISI>://A1991FR75600049},
5757     Volume = {95},
5758     Year = {1991}}
5759 tim 2999
5760 gezelter 3302 @article{Roy2005,
5761     Abstract = {A vast majority of compounds with bent core or banana shaped molecules
5762 tim 2999 exhibit the phase sequence B-6-B-1-B-2 as the chain length is increased
5763     in a homologous series. The B-6 phase has an intercalated fluid
5764     lamellar structure with a layer spacing of half the molecular length.
5765     The B-1 phase has a two dimensionally periodic rectangular columnar
5766     structure. The B-2 phase has a monolayer fluid lamellar structure
5767     with molecules tilted with respect to the layer normal. Neglecting
5768     the tilt order of the molecules in the B-2 phase, we have developed
5769     a frustrated packing model to describe this phase sequence qualitatively.
5770     The model has some analogy with that of the frustrated smectics
5771     exhibited by highly polar rod like molecules.},
5772 gezelter 3302 Annote = {985FW Times Cited:0 Cited References Count:30},
5773     Author = {A. Roy and N. V. Madhusudana},
5774     Issn = {1292-8941},
5775     Journal = {European Physical Journal E},
5776     Month = {Nov},
5777     Number = {3},
5778     Pages = {253-258},
5779     Title = {A frustrated packing model for the B-6-B-1-SmAP(A) sequence of phases in banana shaped molecules},
5780     Uri = {<Go to ISI>://000233363300002},
5781     Volume = {18},
5782     Year = {2005}}
5783 tim 2999
5784 gezelter 3302 @article{Ryckaert1977,
5785     Annote = {Cz253 Times Cited:3680 Cited References Count:7},
5786     Author = {J. P. Ryckaert and G. Ciccotti and H. J. C. Berendsen},
5787     Issn = {0021-9991},
5788     Journal = {Journal of Computational Physics},
5789     Number = {3},
5790     Pages = {327-341},
5791     Title = {Numerical-Integration of Cartesian Equations of Motion of a System with Constraints - Molecular-Dynamics of N-Alkanes},
5792     Uri = {<Go to ISI>://A1977CZ25300007},
5793     Volume = {23},
5794     Year = {1977}}
5795 tim 2999
5796 gezelter 3302 @article{Sagui1999,
5797     Abstract = {Current computer simulations of biomolecules typically make use of
5798 tim 2999 classical molecular dynamics methods, as a very large number (tens
5799     to hundreds of thousands) of atoms are involved over timescales
5800     of many nanoseconds. The methodology for treating short-range bonded
5801     and van der Waals interactions has matured. However, long-range
5802     electrostatic interactions still represent a bottleneck in simulations.
5803     In this article, we introduce the basic issues for an accurate representation
5804     of the relevant electrostatic interactions. In spite of the huge
5805     computational time demanded by most biomolecular systems, it is
5806     no longer necessary to resort to uncontrolled approximations such
5807     as the use of cutoffs. In particular, we discuss the Ewald summation
5808     methods, the fast particle mesh methods, and the fast multipole
5809     methods. We also review recent efforts to understand the role of
5810     boundary conditions in systems with long-range interactions, and
5811     conclude with a short perspective on future trends.},
5812 gezelter 3302 Annote = {213KJ Times Cited:126 Cited References Count:73},
5813     Author = {C. Sagui and T. A. Darden},
5814     Issn = {1056-8700},
5815     Journal = {Annual Review of Biophysics and Biomolecular Structure},
5816     Pages = {155-179},
5817     Title = {Molecular dynamics simulations of biomolecules: Long-range electrostatic effects},
5818     Uri = {<Go to ISI>://000081271400008},
5819     Volume = {28},
5820     Year = {1999}}
5821 tim 2999
5822 gezelter 3302 @article{Sandu1999,
5823     Abstract = {Numerical resonance artifacts have become recognized recently as a
5824 tim 2999 limiting factor to increasing the timestep in multiple-timestep
5825     (MTS) biomolecular dynamics simulations. At certain timesteps correlated
5826     to internal motions (e.g., 5 fs, around half the period of the fastest
5827     bond stretch, T-min), visible inaccuracies or instabilities can
5828     occur. Impulse-MTS schemes are vulnerable to these resonance errors
5829     since large energy pulses are introduced to the governing dynamics
5830     equations when the slow forces are evaluated. We recently showed
5831     that such resonance artifacts can be masked significantly by applying
5832     extrapolative splitting to stochastic dynamics. Theoretical and
5833     numerical analyses of force-splitting integrators based on the Verlet
5834     discretization are reported here for linear models to explain these
5835     observations and to suggest how to construct effective integrators
5836     for biomolecular dynamics that balance stability with accuracy.
5837     Analyses for Newtonian dynamics demonstrate the severe resonance
5838     patterns of the Impulse splitting, with this severity worsening
5839     with the outer timestep. Delta t: Constant Extrapolation is generally
5840     unstable, but the disturbances do not grow with Delta t. Thus. the
5841     stochastic extrapolative combination can counteract generic instabilities
5842     and largely alleviate resonances with a sufficiently strong Langevin
5843     heat-bath coupling (gamma), estimates for which are derived here
5844     based on the fastest and slowest motion periods. These resonance
5845     results generally hold for nonlinear test systems: a water tetramer
5846     and solvated protein. Proposed related approaches such as Extrapolation/Correction
5847     and Midpoint Extrapolation work better than Constant Extrapolation
5848     only for timesteps less than T-min/2. An effective extrapolative
5849     stochastic approach for biomolecules that balances long-timestep
5850     stability with good accuracy for the fast subsystem is then applied
5851     to a biomolecule using a three-class partitioning: the medium forces
5852     are treated by Midpoint Extrapolation via position Verlet, and the
5853     slow forces are incorporated by Constant Extrapolation. The resulting
5854     algorithm (LN) performs well on a solvated protein system in terms
5855     of thermodynamic properties and yields an order of magnitude speedup
5856     with respect to single-timestep Langevin trajectories. Computed
5857     spectral density functions also show how the Newtonian modes can
5858     be approximated by using a small gamma in the range Of 5-20 ps(-1).
5859     (C) 1999 Academic Press.},
5860 gezelter 3302 Annote = {194FM Times Cited:14 Cited References Count:32},
5861     Author = {A. Sandu and T. Schlick},
5862     Issn = {0021-9991},
5863     Journal = {Journal of Computational Physics},
5864     Month = {May 1},
5865     Number = {1},
5866     Pages = {74-113},
5867     Title = {Masking resonance artifacts in force-splitting methods for biomolecular simulations by extrapolative Langevin dynamics},
5868     Uri = {<Go to ISI>://000080181500004},
5869     Volume = {151},
5870     Year = {1999}}
5871 tim 2746
5872 gezelter 3302 @article{Sasaki2004,
5873     Abstract = {Tris(2-aminoethyl) amine derivatives with appended urea and sulfonamide
5874 tim 2999 groups are shown to facilitate the translocation of fluorescent
5875     phospholipid probes and endogenous phosphatidylserine across vesicle
5876     and erythrocyte cell membranes. The synthetic translocases appear
5877     to operate by binding to the phospholipid head groups and forming
5878     lipophilic supramolecular complexes which diffuse through the non-polar
5879     interior of the bilayer membrane.},
5880 gezelter 3302 Annote = {760PX Times Cited:8 Cited References Count:25},
5881     Author = {Y. Sasaki and R. Shukla and B. D. Smith},
5882     Issn = {1477-0520},
5883     Journal = {Organic \& Biomolecular Chemistry},
5884     Number = {2},
5885     Pages = {214-219},
5886     Title = {Facilitated phosphatidylserine flip-flop across vesicle and cell membranes using urea-derived synthetic translocases},
5887     Uri = {<Go to ISI>://000187843800012},
5888     Volume = {2},
5889     Year = {2004}}
5890 tim 2999
5891 gezelter 3302 @article{Satoh1996,
5892     Abstract = {The effects of dipole-dipole interaction on mesophase formation are
5893 tim 2999 investigated with a Monte Carlo simulation using the dipolar Gay-Berne
5894     potential. It is shown that the dipole moment at the end of a molecule
5895     causes a shift in the nematic-isotropic transition toward higher
5896     temperature and a spread of the temperature range of the nematic
5897     phase and that layer structures with various interdigitations are
5898     formed in the smectic phase.},
5899 gezelter 3302 Annote = {Uq975 Times Cited:32 Cited References Count:33},
5900     Author = {K. Satoh and S. Mita and S. Kondo},
5901     Issn = {0009-2614},
5902     Journal = {Chemical Physics Letters},
5903     Month = {Jun 7},
5904     Number = {1-3},
5905     Pages = {99-104},
5906     Title = {Monte Carlo simulations using the dipolar Gay-Berne model: Effect of terminal dipole moment on mesophase formation},
5907     Uri = {<Go to ISI>://A1996UQ97500017},
5908     Volume = {255},
5909     Year = {1996}}
5910 tim 2999
5911 gezelter 3302 @article{Schaps1999,
5912     Annote = {163EC Times Cited:0 Cited References Count:0},
5913     Author = {G. L. Schaps},
5914     Issn = {1044-789X},
5915     Journal = {Dr Dobbs Journal},
5916     Month = {Mar},
5917     Number = {3},
5918     Pages = {84-+},
5919     Title = {Compiler construction with ANTLR and Java - Tools for building tools},
5920     Uri = {<Go to ISI>://000078389200023},
5921     Volume = {24},
5922     Year = {1999}}
5923 tim 2999
5924 gezelter 3302 @article{Shen2002,
5925     Abstract = {Met-enkephalin is one of the smallest opiate peptides. Yet, its dynamical
5926 tim 2999 structure and receptor docking mechanism are still not well understood.
5927     The conformational dynamics of this neuron peptide in liquid water
5928     are studied here by using all-atom molecular dynamics (MID) and
5929     implicit water Langevin dynamics (LD) simulations with AMBER potential
5930     functions and the three-site transferable intermolecular potential
5931     (TIP3P) model for water. To achieve the same simulation length in
5932     physical time, the full MID simulations require 200 times as much
5933     CPU time as the implicit water LID simulations. The solvent hydrophobicity
5934     and dielectric behavior are treated in the implicit solvent LD simulations
5935     by using a macroscopic solvation potential, a single dielectric
5936     constant, and atomic friction coefficients computed using the accessible
5937     surface area method with the TIP3P model water viscosity as determined
5938     here from MID simulations for pure TIP3P water. Both the local and
5939     the global dynamics obtained from the implicit solvent LD simulations
5940     agree very well with those from the explicit solvent MD simulations.
5941     The simulations provide insights into the conformational restrictions
5942     that are associated with the bioactivity of the opiate peptide dermorphin
5943     for the delta-receptor.},
5944 gezelter 3302 Annote = {540MH Times Cited:36 Cited References Count:45},
5945     Author = {M. Y. Shen and K. F. Freed},
5946     Issn = {0006-3495},
5947     Journal = {Biophysical Journal},
5948     Month = {Apr},
5949     Number = {4},
5950     Pages = {1791-1808},
5951     Title = {Long time dynamics of met-enkephalin: Comparison of explicit and implicit solvent models},
5952     Uri = {<Go to ISI>://000174932400010},
5953     Volume = {82},
5954     Year = {2002}}
5955 tim 2746
5956 gezelter 3302 @article{Shillcock2005,
5957     Annote = {901QJ Times Cited:9 Cited References Count:23},
5958     Author = {J. C. Shillcock and R. Lipowsky},
5959     Issn = {1476-1122},
5960     Journal = {Nature Materials},
5961     Month = {Mar},
5962     Number = {3},
5963     Pages = {225-228},
5964     Title = {Tension-induced fusion of bilayer membranes and vesicles},
5965     Uri = {<Go to ISI>://000227296700019},
5966     Volume = {4},
5967     Year = {2005}}
5968 tim 2746
5969 gezelter 3302 @article{Shimada1993,
5970     Abstract = {To make improved treatments of electrostatic interactions in biomacromolecular
5971 tim 2999 simulations, two possibilities are considered. The first is the
5972     famous particle-particle and particle-mesh (PPPM) method developed
5973     by Hockney and Eastwood, and the second is a new one developed here
5974     in their spirit but by the use of the multipole expansion technique
5975     suggested by Ladd. It is then numerically found that the new PPPM
5976     method gives more accurate results for a two-particle system at
5977     small separation of particles. Preliminary numerical examination
5978     of the various computational methods for a single configuration
5979     of a model BPTI-water system containing about 24,000 particles indicates
5980     that both of the PPPM methods give far more accurate values with
5981     reasonable computational cost than do the conventional truncation
5982     methods. It is concluded the two PPPM methods are nearly comparable
5983     in overall performance for the many-particle systems, although the
5984     first method has the drawback that the accuracy in the total electrostatic
5985     energy is not high for configurations of charged particles randomly
5986     generated.},
5987 gezelter 3302 Annote = {Lh164 Times Cited:27 Cited References Count:47},
5988     Author = {J. Shimada and H. Kaneko and T. Takada},
5989     Issn = {0192-8651},
5990     Journal = {Journal of Computational Chemistry},
5991     Month = {Jul},
5992     Number = {7},
5993     Pages = {867-878},
5994     Title = {Efficient Calculations of Coulombic Interactions in Biomolecular Simulations with Periodic Boundary-Conditions},
5995     Uri = {<Go to ISI>://A1993LH16400011},
5996     Volume = {14},
5997     Year = {1993}}
5998 tim 2999
5999 gezelter 3302 @article{Skeel2002,
6000     Abstract = {The best simple method for Newtonian molecular dynamics is indisputably
6001 tim 2999 the leapfrog Stormer-Verlet method. The appropriate generalization
6002     to simple Langevin dynamics is unclear. An analysis is presented
6003     comparing an 'impulse method' (kick; fluctuate; kick), the 1982
6004     method of van Gunsteren and Berendsen, and the Brunger-Brooks-Karplus
6005     (BBK) method. It is shown how the impulse method and the van Gunsteren-Berendsen
6006     methods can be implemented as efficiently as the BBK method. Other
6007     considerations suggest that the impulse method is the best basic
6008     method for simple Langevin dynamics, with the van Gunsteren-Berendsen
6009     method a close contender.},
6010 gezelter 3302 Annote = {633RX Times Cited:8 Cited References Count:22},
6011     Author = {R. D. Skeel and J. A. Izaguirre},
6012     Issn = {0026-8976},
6013     Journal = {Molecular Physics},
6014     Month = {Dec 20},
6015     Number = {24},
6016     Pages = {3885-3891},
6017     Title = {An impulse integrator for Langevin dynamics},
6018     Uri = {<Go to ISI>://000180297200014},
6019     Volume = {100},
6020     Year = {2002}}
6021 tim 2746
6022 gezelter 3302 @article{Skeel1997,
6023     Abstract = {The following integration methods for special second-order ordinary
6024 tim 2999 differential equations are studied: leapfrog, implicit midpoint,
6025     trapezoid, Stormer-Verlet, and Cowell-Numerov. We show that all
6026     are members, or equivalent to members, of a one-parameter family
6027     of schemes. Some methods have more than one common form, and we
6028     discuss a systematic enumeration of these forms. We also present
6029     a stability and accuracy analysis based on the idea of ''modified
6030     equations'' and a proof of symplecticness. It follows that Cowell-Numerov
6031     and ''LIM2'' (a method proposed by Zhang and Schlick) are symplectic.
6032     A different interpretation of the values used by these integrators
6033     leads to higher accuracy and better energy conservation. Hence,
6034     we suggest that the straightforward analysis of energy conservation
6035     is misleading.},
6036 gezelter 3302 Annote = {We981 Times Cited:30 Cited References Count:35},
6037     Author = {R. D. Skeel and G. H. Zhang and T. Schlick},
6038     Issn = {1064-8275},
6039     Journal = {Siam Journal on Scientific Computing},
6040     Month = {Jan},
6041     Number = {1},
6042     Pages = {203-222},
6043     Title = {A family of symplectic integrators: Stability, accuracy, and molecular dynamics applications},
6044     Uri = {<Go to ISI>://A1997WE98100012},
6045     Volume = {18},
6046     Year = {1997}}
6047 tim 2746
6048 gezelter 3302 @article{Tao2005,
6049     Abstract = {Recently a microscopic theory for the dynamics of suspensions of long
6050 tim 2999 thin rigid rods was presented, confirming and expanding the well-known
6051     theory by Doi and Edwards [The Theory of Polymer Dynamics (Clarendon,
6052     Oxford, 1986)] and Kuzuu [J. Phys. Soc. Jpn. 52, 3486 (1983)]. Here
6053     this theory is put to the test by comparing it against computer
6054     simulations. A Brownian dynamics simulation program was developed
6055     to follow the dynamics of the rods, with a length over a diameter
6056     ratio of 60, on the Smoluchowski time scale. The model accounts
6057     for excluded volume interactions between rods, but neglects hydrodynamic
6058     interactions. The self-rotational diffusion coefficients D-r(phi)
6059     of the rods were calculated by standard methods and by a new, more
6060     efficient method based on calculating average restoring torques.
6061     Collective decay of orientational order was calculated by means
6062     of equilibrium and nonequilibrium simulations. Our results show
6063     that, for the currently accessible volume fractions, the decay times
6064     in both cases are virtually identical. Moreover, the observed decay
6065     of diffusion coefficients with volume fraction is much quicker than
6066     predicted by the theory, which is attributed to an oversimplification
6067     of dynamic correlations in the theory. (c) 2005 American Institute
6068     of Physics.},
6069 gezelter 3302 Annote = {943DN Times Cited:3 Cited References Count:26},
6070     Author = {Y. G. Tao and W. K. {den Otter} and J. T. Padding and J. K. G. Dhont and W. J. Briels},
6071     Issn = {0021-9606},
6072     Journal = {Journal of Chemical Physics},
6073     Month = {Jun 22},
6074     Number = {24},
6075     Pages = {-},
6076     Title = {Brownian dynamics simulations of the self- and collective rotational diffusion coefficients of rigid long thin rods},
6077     Uri = {<Go to ISI>://000230332400077},
6078     Volume = {122},
6079     Year = {2005}}
6080 tim 2746
6081 gezelter 3302 @book{Tolman1979,
6082     Address = {New York},
6083     Author = {R.~C. Tolman},
6084     Chapter = {2},
6085     Pages = {19-22},
6086     Publisher = {Dover Publications, Inc.},
6087     Title = {The Principles of Statistical Mechanics},
6088     Year = {1979}}
6089 tim 2999
6090 gezelter 3302 @article{Tu1995,
6091     Abstract = {We report a constant pressure and temperature molecular dynamics simulation
6092 tim 2999 of a fully hydrated liquid crystal (L(alpha) phase bilayer of dipalmitoylphosphatidylcholine
6093     at 50 degrees C and 28 water molecules/lipid. We have shown that
6094     the bilayer is stable throughout the 1550-ps simulation and have
6095     demonstrated convergence of the system dimensions. Several important
6096     aspects of the bilayer structure have been investigated and compared
6097     favorably with experimental results. For example, the average positions
6098     of specific carbon atoms along the bilayer normal agree well with
6099     neutron diffraction data, and the electron density profile is in
6100     accord with x-ray diffraction results. The hydrocarbon chain deuterium
6101     order parameters agree reasonably well with NMR results for the
6102     middles of the chains, but the simulation predicts too much order
6103     at the chain ends. In spite of the deviations in the order parameters,
6104     the hydrocarbon chain packing density appears to be essentially
6105     correct, inasmuch as the area/lipid and bilayer thickness are in
6106     agreement with the most refined experimental estimates. The deuterium
6107     order parameters for the glycerol and choline groups, as well as
6108     the phosphorus chemical shift anisotropy, are in qualitative agreement
6109     with those extracted from NMR measurements.},
6110 gezelter 3302 Annote = {Tv018 Times Cited:108 Cited References Count:34},
6111     Author = {K. Tu and D. J. Tobias and M. L. Klein},
6112     Issn = {0006-3495},
6113     Journal = {Biophysical Journal},
6114     Month = {Dec},
6115     Number = {6},
6116     Pages = {2558-2562},
6117     Title = {Constant pressure and temperature molecular dynamics simulation of a fully hydrated liquid crystal phase dipalmitoylphosphatidylcholine bilayer},
6118     Uri = {<Go to ISI>://A1995TV01800037},
6119     Volume = {69},
6120     Year = {1995}}
6121 tim 2999
6122 gezelter 3302 @article{Tuckerman1992,
6123     Abstract = {The Trotter factorization of the Liouville propagator is used to generate
6124 tim 2999 new reversible molecular dynamics integrators. This strategy is
6125     applied to derive reversible reference system propagator algorithms
6126     (RESPA) that greatly accelerate simulations of systems with a separation
6127     of time scales or with long range forces. The new algorithms have
6128     all of the advantages of previous RESPA integrators but are reversible,
6129     and more stable than those methods. These methods are applied to
6130     a set of paradigmatic systems and are shown to be superior to earlier
6131     methods. It is shown how the new RESPA methods are related to predictor-corrector
6132     integrators. Finally, we show how these methods can be used to accelerate
6133     the integration of the equations of motion of systems with Nose
6134     thermostats.},
6135 gezelter 3302 Annote = {Je891 Times Cited:680 Cited References Count:19},
6136     Author = {M. Tuckerman and B. J. Berne and G. J. Martyna},
6137     Issn = {0021-9606},
6138     Journal = {Journal of Chemical Physics},
6139     Month = {Aug 1},
6140     Number = {3},
6141     Pages = {1990-2001},
6142     Title = {Reversible Multiple Time Scale Molecular-Dynamics},
6143     Uri = {<Go to ISI>://A1992JE89100044},
6144     Volume = {97},
6145     Year = {1992}}
6146 tim 2746
6147 gezelter 3302 @book{Varadarajan1974,
6148     Address = {New York},
6149     Author = {V.S. Varadarajan},
6150     Publisher = {Prentice-Hall},
6151     Title = {Lie groups, Lie algebras, and their representations},
6152     Year = {1974}}
6153 tim 2999
6154 gezelter 3302 @article{Vincent1995,
6155     Abstract = {We have implemented a portable parallel version of the macromolecular
6156 tim 2999 modeling package AMBER4. The message passing paradigm was used.
6157     All message passing constructs are compliant with the Message Passing
6158     Interface (MPI) standard. The molecular dynamics/minimization module
6159     MINMD and the free-energy perturbation module Gibbs have been implemented
6160     in parallel on a number of machines, including a Gray T3D, an IBM
6161     SP1/SP2, and a collection of networked workstations. In addition,
6162     the code has been tested with an MPI implementation from Argonne
6163     National Laboratories/Mississippi State University which runs on
6164     many parallel machines. The goal of this work is to decrease the
6165     amount of time required to perform molecular dynamics simulations.
6166     Performance results for a Lipid bilayer molecular dynamics simulation
6167     on a Gray T3D, an IBM SP1/SPZ and a Gray C90 are compared. (C) 1995
6168     by John Wiley & Sons, Inc.},
6169 gezelter 3302 Annote = {Ta403 Times Cited:16 Cited References Count:23},
6170     Author = {J. J. Vincent and K. M. Merz},
6171     Issn = {0192-8651},
6172     Journal = {Journal of Computational Chemistry},
6173     Month = {Nov},
6174     Number = {11},
6175     Pages = {1420-1427},
6176     Title = {A Highly Portable Parallel Implementation of Amber4 Using the Message-Passing Interface Standard},
6177     Uri = {<Go to ISI>://A1995TA40300009},
6178     Volume = {16},
6179     Year = {1995}}
6180 tim 2999
6181 gezelter 3302 @article{Wegener1979,
6182     Author = {W.~A. Wegener, V.~J. Koester and R.~M. Dowben},
6183     Journal = {Proc. Natl. Acad. Sci.},
6184     Number = {12},
6185     Pages = {6356-6360},
6186     Title = {A general ellipsoid can not always serve as a modle for the rotational diffusion properties of arbitrary shaped rigid molecules},
6187     Volume = {76},
6188     Year = {1979}}
6189 tim 2999
6190 gezelter 3302 @article{Wilson2006,
6191     Author = {G.~V. Wilson},
6192     Journal = {American Scientist},
6193     Title = {Where's the Real Bottleneck in Scientific Computing?},
6194     Volume = {94},
6195     Year = {2006}}
6196 tim 2999
6197 gezelter 3302 @article{Withers2003,
6198     Abstract = {The effects of longitudinal quadrupole moments on the formation of
6199 tim 2999 liquid crystalline phases are studied by means of constant NPT Monte
6200     Carlo simulation methods. The popular Gay-Berne model mesogen is
6201     used as the reference fluid, which displays the phase sequences
6202     isotropic-smectic A-smectic B and isotropic-smectic B at high (T*=2.0)
6203     and low (T*=1.5) temperatures, respectively. With increasing quadrupole
6204     magnitude the smectic phases are observed to be stabilized with
6205     respect to the isotropic liquid, while the smectic B is destabilized
6206     with respect to the smectic A. At the lower temperature, a sufficiently
6207     large quadrupole magnitude results in the injection of the smectic
6208     A phase into the phase sequence and the replacement of the smectic
6209     B phase by the tilted smectic J phase. The nematic phase is also
6210     injected into the phase sequence at both temperatures considered,
6211     and ultimately for sufficiently large quadrupole magnitudes no coherent
6212     layered structures were observed. The stabilization of the smectic
6213     A phase supports the commonly held belief that, while the inclusion
6214     of polar groups is not a prerequisite for the formation of the smectic
6215     A phase, quadrupolar interactions help to increase the temperature
6216     and pressure range for which the smectic A phase is observed. The
6217     quality of the layered structure is worsened with increasing quadrupole
6218     magnitude. This behavior, along with the injection of the nematic
6219     phase into the phase sequence, indicate that the general tendency
6220     of the quadrupolar interactions is to destabilize the layered structure.
6221     A pressure dependence upon the smectic layer spacing is observed.
6222     This behavior is in much closer agreement with experimental findings
6223     than has been observed previously for nonpolar Gay-Berne and hard
6224     spherocylinder models. (C) 2003 American Institute of Physics.},
6225 gezelter 3302 Annote = {738EF Times Cited:3 Cited References Count:43},
6226     Author = {I. M. Withers},
6227     Issn = {0021-9606},
6228     Journal = {Journal of Chemical Physics},
6229     Month = {Nov 15},
6230     Number = {19},
6231     Pages = {10209-10223},
6232     Title = {Effects of longitudinal quadrupoles on the phase behavior of a Gay-Berne fluid},
6233     Uri = {<Go to ISI>://000186273200027},
6234     Volume = {119},
6235     Year = {2003}}
6236 tim 2999
6237 gezelter 3302 @article{Wolf1999,
6238     Abstract = {Based on a recent result showing that the net Coulomb potential in
6239 tim 2999 condensed ionic systems is rather short ranged, an exact and physically
6240     transparent method permitting the evaluation of the Coulomb potential
6241     by direct summation over the r(-1) Coulomb pair potential is presented.
6242     The key observation is that the problems encountered in determining
6243     the Coulomb energy by pairwise, spherically truncated r(-1) summation
6244     are a direct consequence of the fact that the system summed over
6245     is practically never neutral. A simple method is developed that
6246     achieves charge neutralization wherever the r(-1) pair potential
6247     is truncated. This enables the extraction of the Coulomb energy,
6248     forces, and stresses from a spherically truncated, usually charged
6249     environment in a manner that is independent of the grouping of the
6250     pair terms. The close connection of our approach with the Ewald
6251     method is demonstrated and exploited, providing an efficient method
6252     for the simulation of even highly disordered ionic systems by direct,
6253     pairwise r(-1) summation with spherical truncation at rather short
6254     range, i.e., a method which fully exploits the short-ranged nature
6255     of the interactions in ionic systems. The method is validated by
6256     simulations of crystals, liquids, and interfacial systems, such
6257     as free surfaces and grain boundaries. (C) 1999 American Institute
6258     of Physics. [S0021-9606(99)51517-1].},
6259 gezelter 3302 Annote = {189PD Times Cited:70 Cited References Count:34},
6260     Author = {D. Wolf and P. Keblinski and S. R. Phillpot and J. Eggebrecht},
6261     Issn = {0021-9606},
6262     Journal = {Journal of Chemical Physics},
6263     Month = {May 1},
6264     Number = {17},
6265     Pages = {8254-8282},
6266     Title = {Exact method for the simulation of Coulombic systems by spherically truncated, pairwise r(-1) summation},
6267     Uri = {<Go to ISI>://000079913000008},
6268     Volume = {110},
6269     Year = {1999}}
6270 tim 2999
6271 gezelter 3302 @article{Yoshida1990,
6272     Annote = {Ej798 Times Cited:492 Cited References Count:9},
6273     Author = {H. Yoshida},
6274     Issn = {0375-9601},
6275     Journal = {Physics Letters A},
6276     Month = {Nov 12},
6277     Number = {5-7},
6278     Pages = {262-268},
6279     Title = {Construction of Higher-Order Symplectic Integrators},
6280     Uri = {<Go to ISI>://A1990EJ79800009},
6281     Volume = {150},
6282     Year = {1990}}
6283 tim 2999
6284 gezelter 3302 @article{Blum1972,
6285     Author = {L. Blum and A.~J. Torruella},
6286     Journal = {Journal of Chemical Physics},
6287     Number = 1,
6288     Pages = {303-309},
6289     Title = {Computer simulations of bilayer membranes: Self-assembly and interfacial tension},
6290     Volume = 56,
6291     Year = 1972}
6292 tim 2999
6293 gezelter 3302 @article{Stone1978,
6294     Author = {A.~J. Stone},
6295     Journal = {Molecular Physics},
6296     Number = 1,
6297     Pages = {241-256},
6298     Title = {The description of bimolecular potentials, forces and torques: the S and V function expansions},
6299     Volume = 36,
6300     Year = 1978}
6301 tim 2999
6302 gezelter 3302 @article{Berardi2003,
6303     Author = {R. Berardi, M. Cecchini and C. Zannoni},
6304     Journal = {Journal of Chemical Physics},
6305     Number = 18,
6306     Pages = {9933-9946},
6307     Title = {A Monte Carlo study of the chiral columnar organizations of dissymmetric discotic mesogens},
6308     Volume = 119,
6309     Year = 2003}
6310 tim 2999
6311 gezelter 3302 @article{Beard2000,
6312     Author = {D. A. Beard and T. Schlick},
6313     Journal = {Journal of Chemical Physics},
6314     Number = 17,
6315     Pages = {7313-7322},
6316     Title = {Inertial Stochastic Dynamics. I. Long-time-step Methods for Langevin Dynamics},
6317     Volume = 112,
6318     Year = 2000}
6319 tim 2999
6320 gezelter 3302 @book{Hirsch1997,
6321     Address = {New York},
6322     Author = {M.W. Hirsch},
6323     Publisher = {Springer},
6324     Title = {Differential Topology},
6325     Year = {1997}}
6326 tim 2999
6327 gezelter 3302 @book{Jost2002,
6328     Address = {Berlin},
6329     Author = {J. Jost},
6330     Publisher = {Springer-Verlag},
6331     Title = {Riemannian Geometry and Geometric Analysis},
6332     Year = {2002}}
6333 tim 2999
6334 gezelter 3302 @book{McDuff1998,
6335     Address = {Oxford},
6336     Author = {D. McDuff and D. Salamon},
6337     Publisher = {Oxford Mathematical Monographs},
6338     Title = {Introduction to Symplectic Topology},
6339     Year = {1998}}
6340 tim 2999
6341 gezelter 3302 @article{Matubayasi1999,
6342     Author = {N. Matubayasi and M. Nakahara},
6343     Journal = {Journal of Chemical Physics},
6344     Number = 7,
6345     Pages = {3291-3301},
6346     Title = {Reversible molecular dynamics for rigid bodies and hybrid Monte Carlo},
6347     Volume = 110,
6348     Year = 1999}
6349 tim 2999
6350 gezelter 3302 @article{Miller2002,
6351     Author = {T.F. Miller III, M. Eleftheriou},
6352     Journal = {Journal of Chemical Physics},
6353     Number = 20,
6354     Pages = {8649-8659},
6355     Title = {Symplectic quaternion scheme for biophysical molecular dynamics},
6356     Volume = 116,
6357     Year = 1999}
6358 tim 2999
6359 gezelter 3302 @article{McMillan1971,
6360     Author = {W.L. McMillan},
6361     Journal = {Journal of Chemical Physics},
6362     Number = 3,
6363     Pages = {1238-1246},
6364     Title = {Simple Molecular Model for the Smectic A Phase of Liquid Crystals},
6365     Volume = 4,
6366     Year = 1971}
6367 tim 2999
6368 gezelter 3302 @article{Gilmore1974,
6369     Author = {R. Gilmore},
6370     Journal = {Journal of Mathematical Physics},
6371     Number = 12,
6372     Pages = {2090-2092},
6373     Title = {Baker-Campbell-Hausdorff Formulas},
6374     Volume = 15,
6375     Year = 1974}
6376 tim 2999
6377 gezelter 3302 @article{Strang1968,
6378     Author = {G. Strang},
6379     Journal = {SIAM Journal on Numerical Analysis},
6380     Number = 3,
6381     Pages = {506-517},
6382     Title = {On the construction and comparision of difference schemes},
6383     Volume = 5,
6384     Year = 1968}
6385 tim 2999
6386 gezelter 3302 @article{Trotter1959,
6387     Author = {H.F. Trotter},
6388     Journal = {SIAM Journal on Numerical Analysis},
6389     Number = 14,
6390     Pages = {545-551},
6391     Title = {On the product of semi-groups of operators},
6392     Volume = 10,
6393     Year = 1959}
6394 tim 2999
6395 gezelter 3302 @article{Cartwright1992,
6396     Author = {J.H.E. Cartwright and O. Piro},
6397     Journal = {International Journal of Bifurcation and Chaos},
6398     Number = 3,
6399     Pages = {427-449},
6400     Title = {The Dynamics of Runge-Kutta Methods},
6401     Volume = 2,
6402     Year = 1992}