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Brook

The Electronic Future for Managing Ship Condition Data", 1997, Dr K Brook... [Pg.1052]

Brooks F C 1952 Convergence of intermolecular force series Phys. Rev. 86 92... [Pg.210]

Brooks H, Birch F, Hoiton G and Paui W (eds) 1964 Collected Experimental Papers of PW Bridgman voi i-Vii (Cambridge Harvard University Press)... [Pg.1966]

C. Brooks III, M. Karplus, and B. Pettier, Proteins. A theoretical perspective of dynamics, structure, and thermodynamics, John Wiley Sons, Inc., New York, 1988, also Adv. Chem. Phys. LXXI,... [Pg.320]

Brooks III, C.L., Karplus, M. Deformable stochastic boubdaries in molecular dynamics. J. Chem. Phys. 79 (1983) 6312-6325. [Pg.29]

Loncharich, R.J., Brooks, B.R. The effects of truncating long-range forces on protein dynamics. Proteins 6 (1989) 32 5. [Pg.31]

Hayward et al. 1994] Hayward, S., Kitao, A., Go, N. Harmonic and anharmonic aspects in the dynamics of BPTI A normal mode analysis and principal component analysis. Prot. Sci. 3 (1994) 936-943 [Head-Gordon and Brooks 1991] Head-Gordon, T., Brooks, C.L. Virtual rigid body dynamics. Biopol. 31 (1991) 77-100... [Pg.76]

Bernhard R. Brooks, Robert E. Bruccoleri, Barry D. Olafson, David J. States, S. Swaminathan, and Martin Karplus. CHARMM A program for macro-molecular energy, minimization, and dynamics calculations. J. Comp. Chem., 4(2) 187-217, 1983. [Pg.96]

Charles L. Brooks III, B. Montgomery Pettitt, and Martin Karplus. Structural and energetic effects of truncating long ranged interactions in ionic and polar fluids. J. Chem. Phys., 83(ll) 5897-5908, December 1985. [Pg.96]

E. M. Boczko and C. L. Brooks III. First principles calculation of the folding free energy of a three helix bundle protein. Science, 269 393-396, 1995. [Pg.174]

For future reference, the Verlet algorithm [18] can be generalized to iticlude the friction and stochastic terms above, and is typically used in the following form described by Brooks, Briinger and Karplus, known as BBK [23, 37] ... [Pg.237]

A. Briinger, C. L. Brooks, III, and M. Karpins. Stochastic boundary conditions for molecular dynamics simulations of ST2 water. Chem. Phys. Lett., 105 495-500, 1982. [Pg.259]

R. J. Loncharich, B. R. Brooks, and R. W. Pastor. Langevin dynamics of peptides The frictional dependence of isomerization rates of N-acetylalanyl-N -methylamide. Biopolymers, 32 523-535, 1992. [Pg.259]

P. Derreumaux, G. Zhang, B. Brooks, and T. Schlick. A truncated-Newton method adapted for CHARMM and biomolecular applications. J. Comp. Chem., 15 532-552, 1994. [Pg.260]

B. R. Brooks and M. Karplus. Normal modes for specific motions of macromolecules Application to the hinge-bending mode of lysozyme. Proc. Natl. Acad. Sci. USA, 82 4995-4999, 1985. [Pg.261]

Brooks, B. R., Janezic, D., Karplus, M. Harmonic Analysis of Large Systems I. Methodology. J. Comput. Chem. 16 (1995) 1522-1542 Janezic, D., Brooks, B. R. Harmonic Analysis of Large Systems II. Comparison of Different Protein Models. J. Comput. Chem. 16 (1995) 1543-1553 Janezic, D., Venable, R. M., Brooks, B. R. Harmonic Analysis of Large Systems. HI. Comparison with Molecular Dynamics. J. Comput. Chem. 16 (1995) 1554-1566... [Pg.346]

Watanabe, M., Karplus, M. Dynamics of Molecules with Internal Degrees of Freedom by Multiple Time-Step Methods. J. Chem. Phys. 99 (1995) 8063-8074 Figueirido, F., Levy, R. M., Zhou, R., Berne, B. J. Large Scale Simulation of Macromolecules in Solution Combining the Periodic Fast Multiple Method with Multiple Time Step Integrators. J. Chem. Phys. 106 (1997) 9835-9849 Derreumaux, P., Zhang, G., Schlick, T, Brooks, B.R. A Truncated Newton Minimizer Adapted for CHARMM and Biomolecular Applications. J. Comp. Chem. 15 (1994) 532-555... [Pg.347]

Brooks III, C. L., Karplus, M., Pettitt, B. M. Proteins A Theoretical Perspective of Dynamics, Structure and Thermodynamics. Advances in Chemical Physics, vol. LXXI. John Wiley Sons, New York, 1988. [Pg.481]

Y. Hwang, R. Das, F. H. Saltz, M. Hadoscek and B. R. Brooks, Parallelizing molecular dynamics programs for distributed-memory machines , IEEE Computational Science and Engineering, Vol 2, no 2, 18-29, 1995. [Pg.493]

Brooks [II, ( L. Kirphis. M. Pcuill, B.M. Proteins A I heoreiiral Perspective of Dynamics, Struc.lure, and Phemiodynam ics, in Advances in Che.mioal Physios. Vol. 7 1. John Wiley iind Son s. New York, 1 9HS. [Pg.3]

CIIARMM was first developed as a united atom force field and parameters for some amino acids have been published B. R. Brooks et al.. 1 Comp. ( hem.. 4, 1H7 fl9K3). Siihseqiient changes to the functional form and param eters h ave been published W. Reiher, Ph.D.. TIarvard but most recent parameter develop-... [Pg.193]

Brooks B and M Karplus 1983. Harmonic Dynamics of Proteins Normal Modes and Fluctuations in Bovine Pancreatic Trypsin Inhibitor. Proceedings of the National Academy of Sciences USA 80 6571-6575. [Pg.315]

Brunger A, C B Brooks and M Karplus 1984. Stochastic Boundary Conditions for Molecular Dynaniii Simulations of ST2 Water. Chemical Physics Letters 105 495-500. [Pg.423]

Fleischman S H and C L Brooks III 1987. Thermodynamics of Aqueous Solvation - Solution Properties of. Mcohols and Alkanes. Journal of Chemical Physics 87 3029-3037. [Pg.650]


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12+1 [Cycloaddition reactions, of Brook-type with carbonyls

12+1 [Cycloaddition reactions, of Brook-type with imines

Acid Brook

Adrian, G., and Brook, Michael. A., The Chemistry of Silenes

Allyloxysilanes, retro-1,4-Brook rearrangement

Anionic Brook isomerizations

Aza-Brook rearrangement

BROOK Silaketone rearrangement

Bear Brook Watershed

Binary oxide catalysts synthesized by sequential precipitation Brooks

Biscuit Brook

Black Brook

Bound Brook, New Jersey

Briinger-Brooks-Karplus

Brook charr

Brook isomerization

Brook radical

Brook rearrangement

Brook rearrangement alkoxides

Brook rearrangement annulation reaction

Brook rearrangement cyanide initiation

Brook rearrangement cyclizations involving

Brook rearrangement derivative reactions

Brook rearrangement desulfonylation

Brook rearrangement homoenolate equivalents

Brook rearrangement isomerization

Brook rearrangement mediated

Brook rearrangement methyl ketone enolate

Brook rearrangement organolithiums

Brook rearrangement radical

Brook rearrangement retro

Brook rearrangement reverse

Brook rearrangement silyl enol ether formation

Brook rearrangement silyl group

Brook rearrangement synthetic utility

Brook rearrangement trimethylsilane

Brook rearrangement-intramolecular

Brook rearrangements olefination

Brook rearrangements phospha

Brook silenes

Brook silenes dimerization

Brook silenes properties

Brook silenes reactions

Brook trout (Salvelinusfontinalis)

Brook trout survival

Brook, Peter

Brook-Chem

Brook-Claisen rearrangements

Brook-Claisen rearrangements tandem

Brook-type migration

Brook-type silenes

Brook-type silenes cycloadditions

Brook-type silenes reactions

Brooke

Brooke Eight-Membered Rings

Brooke government

Brooke, James

Brooke, John

Brooke, John Hedley

Brooke, Lord

Brooke, Nicholas

Brookings Institute

Brookings Institution

Brooks 1 (well

Brooks Act

Brooks City Base Project

Brooks data structure

Brooks parsimony analysis

Brooks, Harriet

Brooks, Harvey

Brooks, James

Brooks, Nathan

Brooks, Robert

Brooks-Corey

Brooks-Corey equation

Brooks-Corey model

Brooks-Corey parameters

Carbanions Brook rearrangement

Carbanions retro-Brook-1,2-rearrangement

Cope rearrangements Brook rearrangement

Cyanide, Brook rearrangement

Cyclization involving Brook rearrangement

Dithiane, Brook 1,5-rearrangement

Divinylcyclopropanediolate, Brook

Homo-Brook rearrangement

Hubbard Brook Experimental Forest

Hubbard Brook Experimental Forest (New

Hubbard Brook Experimental Forest, USA

Hubbard Brook Experimental Forest, annual

Intramolecular reactions Brook rearrangement

Inversion, Brook rearrangement, carbon

Isomerization Brook isomerizations

Ketones Brook rearrangement

Molecular rearrangements Brook rearrangement

NASA plum brook reactors

Oak Brook

Ophiobolin via Brook-Claisen rearrangement

Plum Brook Station

Plum brook reactor

Quabbe Brook

Radical Addition Followed by Brook-type Rearrangement

Retro- -Brook

Retro- -Brook organolithiums

Ring synthesis Brook rearrangement

SUNY Stony Brook

Salamander brook

Shields, Brooke

Silanes Brook rearrangement

Silanes, retro-1,5-Brook rearrangement

Silyl group transfers, Brook rearrangement

Silylation Brook isomerizations

Silylcarbinols, Brook rearrangement

State University of New York at Stony Brook

Stereochemistry Brook rearrangement

Stickleback, brook

Taylor, Brook

The Homo-Brook Rearrangement

The Williams Brook gold discovery - northern New Brunswick

Tobias and Brooks in Context

Transmetalation Brook rearrangement

Trout Brook, Salvelinus fontinalis

Trout brook

Vinyl silanes, Brook 1,4-rearrangement

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