Molecular dynamics of the long neurotoxin LSIII.
暂无分享,去创建一个
Jeffrey C Hoch | Alan S Stern | A. Stern | J. Hoch | P. Connolly | Peter J Connolly | Christopher J Turner | C. Turner | A. S. Stern
[1] A. Szabó,et al. Model-free approach to the interpretation of nuclear magnetic resonance relaxation in macromolecules. 1. Theory and range of validity , 1982 .
[2] J. Lefèvre,et al. Theory and practice of nuclear spin relaxation in proteins. , 1996, Annual review of physical chemistry.
[3] A. Maelicke,et al. Acetylcholine receptor. Responses to drug binding. , 1977, The Journal of biological chemistry.
[4] S. Furukawa,et al. Stopped-flow fluorescence studies on binding kinetics of neurotoxins with acetylcholine receptor. , 1986, Biochemistry.
[5] Eric Oldfield,et al. 1H, 13C and 15N chemical shift referencing in biomolecular NMR , 1995, Journal of biomolecular NMR.
[6] P. Wright,et al. Intramolecular motions of a zinc finger DNA-binding domain from Xfin characterized by proton-detected natural abundance carbon-13 heteronuclear NMR spectroscopy , 1991 .
[7] R. J. Williams,et al. Structural dynamics of erabutoxin b. A 13C nuclear magnetic resonance relaxation study of methyl groups. , 1982, European journal of biochemistry.
[8] K Wüthrich,et al. The program XEASY for computer-supported NMR spectral analysis of biological macromolecules , 1995, Journal of biomolecular NMR.
[9] P. Kollman,et al. A Second Generation Force Field for the Simulation of Proteins, Nucleic Acids, and Organic Molecules , 1995 .
[10] R M Stroud,et al. The crystal structure of alpha-bungarotoxin at 2.5 A resolution: relation to solution structure and binding to acetylcholine receptor. , 1986, Protein engineering.
[11] T F Havel,et al. The solution structure of eglin c based on measurements of many NOEs and coupling constants and its comparison with X‐ray structures , 1992, Protein science : a publication of the Protein Society.
[12] K Wüthrich,et al. TROSY in triple-resonance experiments: new perspectives for sequential NMR assignment of large proteins. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[13] A. Palmer,et al. Nmr probes of molecular dynamics: overview and comparison with other techniques. , 2001, Annual review of biophysics and biomolecular structure.
[14] T. Endo,et al. Current view on the structure-function relationship of postsynaptic neurotoxins from snake venoms. , 1987, Pharmacology & therapeutics.
[15] K. Wüthrich,et al. Conformational sampling by NMR solution structures calculated with the program DIANA evaluated by comparison with long‐time molecular dynamics calculations in explicit water , 1996, Proteins.
[16] Y. Fujiyoshi,et al. Nicotinic acetylcholine receptor at 4.6 A resolution: transverse tunnels in the channel wall. , 1999, Journal of molecular biology.
[17] A. Palmer,et al. Backbone dynamics of Escherichia coli ribonuclease HI: correlations with structure and function in an active enzyme. , 1995, Journal of molecular biology.
[18] P. Kollman,et al. The application of different solvation and electrostatic models in molecular dynamics simulations of ubiquitin: How well is the x‐ray structure “maintained”? , 1996, Proteins.
[19] N. Wolff,et al. Internal motion time scales of a small, highly stable and disulfide-rich protein: A 15N, 13C NMR and molecular dynamics study , 1999, Journal of biomolecular NMR.
[20] S. LaPlante,et al. Alpha-cobratoxin: proton NMR assignments and solution structure. , 1992, Biochemistry.
[21] G. Wagner,et al. Relaxation-Rate Measurements for 15N−1H Groups with Pulsed-Field Gradients and Preservation of Coherence Pathways , 1994 .
[22] L. Kay,et al. Overcoming the overlap problem in the assignment of 1H NMR spectra of larger proteins by use of three-dimensional heteronuclear 1H-15N Hartmann-Hahn-multiple quantum coherence and nuclear Overhauser-multiple quantum coherence spectroscopy: application to interleukin 1 beta. , 1989, Biochemistry.
[23] A. Stern,et al. Solution structure of LSIII, a long neurotoxin from the venom of Laticauda semifasciata. , 1996, Biochemistry.
[24] Jeffrey W. Peng,et al. Study of Protein Dynamics by NMR , 1993 .
[25] G. W. Robinson,et al. Thermal Offset Viscosities of Liquid H2O, D2O, and T2O , 1999 .
[26] L. Kay,et al. Backbone dynamics of proteins as studied by 15N inverse detected heteronuclear NMR spectroscopy: application to staphylococcal nuclease. , 1989, Biochemistry.
[27] G. Ciccotti,et al. Numerical Integration of the Cartesian Equations of Motion of a System with Constraints: Molecular Dynamics of n-Alkanes , 1977 .
[28] E. Hawrot,et al. NMR structural analysis of alpha-bungarotoxin and its complex with the principal alpha-neurotoxin-binding sequence on the alpha 7 subunit of a neuronal nicotinic acetylcholine receptor. , 2002, The Journal of biological chemistry.
[29] C. Betzel,et al. The refined crystal structure of alpha-cobratoxin from Naja naja siamensis at 2.4-A resolution. , 1993, The Journal of biological chemistry.
[30] I. R. Peat,et al. Time saving in 13C spin-lattice relaxation measurements by inversion-recovery , 1975 .
[31] A. Palmer,et al. Rotational diffusion anisotropy of proteins from simultaneous analysis of 15N and 13Cα nuclear spin relaxation , 1997, Journal of biomolecular NMR.
[32] T. Sixma,et al. Crystal structure of an ACh-binding protein reveals the ligand-binding domain of nicotinic receptors , 2001, Nature.
[33] M. Philippopoulos,et al. Exploring the dynamic information content of a protein NMR structure: Comparison of a molecular dynamics simulation with the NMR and X‐ray structures of Escherichia coli ribonuclease HI , 1999, Proteins.
[34] J. Michael Schurr,et al. A test of the model-free formulas. Effects of anisotropic rotational diffusion and dimerization. , 1994, Journal of magnetic resonance. Series B.
[35] T. Darden,et al. Particle mesh Ewald: An N⋅log(N) method for Ewald sums in large systems , 1993 .
[36] Y. Fujiyoshi,et al. Activation of the nicotinic acetylcholine receptor involves a switch in conformation of the alpha subunits. , 2002, Journal of molecular biology.
[37] J. García de la Torre,et al. Hydrodynamic properties of complex, rigid, biological macromolecules: theory and applications , 1981, Quarterly Reviews of Biophysics.
[38] Andrea Piserchio,et al. NMR Structural Analysis of α-Bungarotoxin and Its Complex with the Principal α-Neurotoxin-binding Sequence on the α7 Subunit of a Neuronal Nicotinic Acetylcholine Receptor* , 2002, The Journal of Biological Chemistry.
[39] L. Kay,et al. Backbone 1H and 15N resonance assignments of the N-terminal SH3 domain of drk in folded and unfolded states using enhanced-sensitivity pulsed field gradient NMR techniques , 1994, Journal of biomolecular NMR.
[40] Dudley H. Williams,et al. The cost of conformational order: entropy changes in molecular associations , 1992 .
[41] M. Karplus,et al. Effect of constraints, solvent and crystal environment on protein dynamics , 1981, Nature.
[42] W. Jencks,et al. Entropic contributions to rate accelerations in enzymic and intramolecular reactions and the chelate effect. , 1971, Proceedings of the National Academy of Sciences of the United States of America.
[43] A. Palmer,et al. Practical Aspects of Two-Dimensional Proton-Detected 15N Spin Relaxation Measurements , 1993 .
[44] Alan S. Stern,et al. NMR Data Processing , 1996 .
[45] L. Kay,et al. Pulse sequences for removal of the effects of cross correlation between dipolar and chemical-shift anisotropy relaxation mechanisms on the measurement of heteronuclear T1 and T2 values in proteins , 1992 .
[46] H. Berendsen,et al. Molecular dynamics with coupling to an external bath , 1984 .
[47] G. Lipari. Model-free approach to the interpretation of nuclear magnetic resonance relaxation in macromolecules , 1982 .
[48] T. Straatsma,et al. THE MISSING TERM IN EFFECTIVE PAIR POTENTIALS , 1987 .