Mechanism of acyl-enzyme complex formation from the Henry-Michaelis complex of class C β-lactamases with β-lactam antibiotics.
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[1] J. Frère,et al. The role of lysine-67 in a class C β-lactamase is mainly electrostatic , 1994 .
[2] A. Laio,et al. Escaping free-energy minima , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[3] Samy O Meroueh,et al. Bacterial resistance to beta-lactam antibiotics: compelling opportunism, compelling opportunity. , 2005, Chemical reviews.
[4] Alessandro Laio,et al. D-RESP: Dynamically Generated Electrostatic Potential Derived Charges from Quantum Mechanics/Molecular Mechanics Simulations , 2002 .
[5] Richard A Friesner,et al. Mixed quantum mechanical/molecular mechanical (QM/MM) study of the deacylation reaction in a penicillin binding protein (PBP) versus in a class C beta-lactamase. , 2004, Journal of the American Chemical Society.
[6] T. Sawai,et al. Role of lysine-67 in the active site of class C beta-lactamase from Citrobacter freundii GN346. , 1990, European journal of biochemistry.
[7] Nisanth N Nair,et al. Thermodynamic and kinetic stabilities of active site protonation states of class C β-lactamase. , 2012, The journal of physical chemistry. B.
[8] A. Laio,et al. Assessing the accuracy of metadynamics. , 2005, The journal of physical chemistry. B.
[9] Yoshiaki Oyama,et al. pKa measurements from nuclear magnetic resonance of tyrosine-150 in class C beta-lactamase. , 2003, The Biochemical journal.
[10] A. Laio,et al. Free-energy landscape for beta hairpin folding from combined parallel tempering and metadynamics. , 2006, Journal of the American Chemical Society.
[11] Robert A. Bonomo,et al. Extended-Spectrum (cid:2) -Lactamases: a Clinical Update , 2005 .
[12] A. Dubus,et al. The role of tyrosine 150 in catalysis of beta-lactam hydrolysis by AmpC beta-lactamase from Escherichia coli investigated by site-directed mutagenesis. , 1994, Biochemistry.
[13] P. Bandyopadhyay,et al. Investigation of the acylation mechanism of class C beta-lactamase: pKa calculation, molecular dynamics simulation and quantum mechanical calculation , 2012, Journal of Molecular Modeling.
[14] D. Truhlar,et al. The M06 suite of density functionals for main group thermochemistry, thermochemical kinetics, noncovalent interactions, excited states, and transition elements: two new functionals and systematic testing of four M06-class functionals and 12 other functionals , 2008 .
[15] J. Frère,et al. Crystal structure of Enterobacter cloacae 908R class C β-lactamase bound to iodo-acetamido-phenyl boronic acid, a transition-state analogue , 2003, Cellular and Molecular Life Sciences CMLS.
[16] Masayuki Hata,et al. A theoretical study on the substrate deacylation mechanism of class C beta-lactamase. , 2005, The journal of physical chemistry. B.
[17] D. Vanderbilt,et al. Soft self-consistent pseudopotentials in a generalized eigenvalue formalism. , 1990, Physical review. B, Condensed matter.
[18] B. Shoichet,et al. Crystal Structures of Substrate and Inhibitor Complexes with AmpC β-Lactamase: Possible Implications for Substrate-Assisted Catalysis , 2000 .
[19] F. Winkler,et al. Refined crystal structure of β-lactamase from Citrobacter freundiiindicates a mechanism for β-lactam hydrolysis , 1990, Nature.
[20] M. Levitt,et al. Theoretical studies of enzymic reactions: dielectric, electrostatic and steric stabilization of the carbonium ion in the reaction of lysozyme. , 1976, Journal of molecular biology.
[21] B. Shoichet,et al. The deacylation mechanism of AmpC beta-lactamase at ultrahigh resolution. , 2006, Journal of the American Chemical Society.
[22] Junmei Wang,et al. Development and testing of a general amber force field , 2004, J. Comput. Chem..
[23] P. Kollman,et al. A modified version of the Cornell et al. force field with improved sugar pucker phases and helical repeat. , 1999, Journal of biomolecular structure & dynamics.
[24] R. Pratt,et al. Inhibition of a class C beta-lactamase by a specific phosphonate monoester. , 1989, Science.
[25] W. Marsden. I and J , 2012 .
[26] Samy O Meroueh,et al. Structural aspects for evolution of beta-lactamases from penicillin-binding proteins. , 2003, Journal of the American Chemical Society.
[27] M. W. van der Kamp,et al. Combined quantum mechanics/molecular mechanics (QM/MM) methods in computational enzymology. , 2013, Biochemistry.
[28] Bartolomé Vilanova,et al. pH Dependence of and kinetic solvent isotope effects on the methanolysis and hydrolysis of .beta.-lactams catalyzed by class C .beta.-lactamase , 1995 .
[29] Rebecca C. Wade,et al. pKa calculations for class C β‐lactamases: The role of tyr‐150 , 2000 .
[30] M. Nicolas-Chanoine. Impact of β-lactamases on the clinical use of β-lactam antibiotics , 1996 .
[31] M. Klein,et al. Nosé-Hoover chains : the canonical ensemble via continuous dynamics , 1992 .
[32] Maurizio Recanatini,et al. Target-related applications of first principles quantum chemical methods in drug design. , 2006, Chemical reviews.
[33] J. Frère,et al. Evolution of an enzyme activity: crystallographic structure at 2-A resolution of cephalosporinase from the ampC gene of Enterobacter cloacae P99 and comparison with a class A penicillinase. , 1993, Proceedings of the National Academy of Sciences of the United States of America.
[34] Beth M Beadle,et al. Structural milestones in the reaction pathway of an amide hydrolase: substrate, acyl, and product complexes of cephalothin with AmpC beta-lactamase. , 2002, Structure.
[35] Arieh Warshel,et al. Computer Modeling of Chemical Reactions in Enzymes and Solutions , 1991 .
[36] R. Pratt,et al. Mechanism of inhibition of the class C beta-lactamase of Enterobacter cloacae P99 by phosphonate monoesters. , 1992, Biochemistry.
[37] R. Ambler,et al. The structure of beta-lactamases. , 1980, Philosophical transactions of the Royal Society of London. Series B, Biological sciences.
[38] A. Kuzin,et al. Binding of cephalothin and cefotaxime to D-ala-D-ala-peptidase reveals a functional basis of a natural mutation in a low-affinity penicillin-binding protein and in extended-spectrum beta-lactamases. , 1995, Biochemistry.
[39] S. Amyes,et al. Antibiotic Resistance: Proceedings of a Symposium Held on 12 July 1996 at the University of Southampton , 1997 .
[40] D. Turk,et al. 4-Substituted trinems as broad spectrum beta-lactamase inhibitors: structure-based design, synthesis, and biological activity. , 2007, Journal of medicinal chemistry.
[41] A. Laio,et al. A bias-exchange approach to protein folding. , 2007, The journal of physical chemistry. B.
[42] T. Palzkill,et al. Molecular analysis of beta-lactamase structure and function. , 2002, International journal of medical microbiology : IJMM.
[43] Aaas News,et al. Book Reviews , 1893, Buffalo Medical and Surgical Journal.
[44] D. Livermore. beta-Lactamases in laboratory and clinical resistance , 1995, Clinical microbiology reviews.
[45] D. Ehmann,et al. Avibactam is a covalent, reversible, non–β-lactam β-lactamase inhibitor , 2012, Proceedings of the National Academy of Sciences.
[46] Jackson,et al. Atoms, molecules, solids, and surfaces: Applications of the generalized gradient approximation for exchange and correlation. , 1992, Physical review. B, Condensed matter.
[47] Alessandro Laio,et al. A Hamiltonian electrostatic coupling scheme for hybrid Car-Parrinello molecular dynamics simulations , 2002 .
[48] J. Frère,et al. A survey of the kinetic parameters of class C beta-lactamases. Cephalosporins and other beta-lactam compounds. , 1988, The Biochemical journal.
[49] Anton Y Peleg,et al. Hospital-acquired infections due to gram-negative bacteria. , 2010, The New England journal of medicine.
[50] J. Donoso,et al. Role of β‐lactam carboxyl group on binding of penicillins and cephalosporins to class C β‐lactamases , 2003 .
[51] Car,et al. Unified approach for molecular dynamics and density-functional theory. , 1985, Physical review letters.
[52] G. Bou,et al. Class C β-Lactamases: an increasing problem worldwide , 2004 .
[53] E. Billings,et al. Crystallographic structure of a phosphonate derivative of the Enterobacter cloacae P99 cephalosporinase: mechanistic interpretation of a beta-lactamase transition-state analog. , 1994, Biochemistry.
[54] Brian K Shoichet,et al. Structure-based approach for binding site identification on AmpC beta-lactamase. , 2002, Journal of medicinal chemistry.
[55] J. Strominger,et al. Penicillin-binding proteins and the mechanism of action of beta-lactam antibiotics. , 1983, Annual review of biochemistry.
[56] Alessandro Laio,et al. A recipe for the computation of the free energy barrier and the lowest free energy path of concerted reactions. , 2005, The journal of physical chemistry. B.
[57] J. Frère,et al. Role of residue Lys315 in the mechanism of action of the Enterobacter cloacae 908R beta-lactamase. , 1994, Biochemistry.
[58] T. Sawai,et al. Molecular Evolution of a Class C -Lactamase Extending Its Substrate Specificity (*) , 1995, The Journal of Biological Chemistry.
[59] B. Shoichet,et al. Inhibition of AmpC beta-lactamase through a destabilizing interaction in the active site. , 2001, Biochemistry.
[60] D. Marx,et al. Glycine at the pyrite-water interface: the role of surface defects. , 2006, Journal of the American Chemical Society.
[61] C. Dellago,et al. Transition path sampling and the calculation of rate constants , 1998 .
[62] Naoko Nishida,et al. Function of the conserved triad residues in the class C β‐lactamase from Citrobacter freundii GN346 , 1990, FEBS letters.
[63] F. Winkler,et al. Refined crystal structure of beta-lactamase from Citrobacter freundii indicates a mechanism for beta-lactam hydrolysis. , 2001, Nature.
[64] G. G. Stokes. "J." , 1890, The New Yale Book of Quotations.
[65] J. Donoso,et al. Evolution of class C β-lactamases: factors influencing their hydrolysis and recognition mechanisms , 2008 .
[66] Dimas Suárez,et al. Molecular dynamics simulations of class C beta-lactamase from Citrobacter freundii: insights into the base catalyst for acylation. , 2006, Biochemistry.
[67] G. Giacomello,et al. Proteins structure. , 1957, Scientia medica italica. English ed.
[68] Brian K Shoichet,et al. Re‐examining the role of Lys67 in class C β‐lactamase catalysis , 2009, Protein science : a publication of the Protein Society.
[69] Alessandro Laio,et al. Efficient exploration of reactive potential energy surfaces using Car-Parrinello molecular dynamics. , 2003, Physical review letters.