Insights into regioselective metabolism of mefenamic acid by cytochrome P450 BM3 mutants through crystallography, docking, molecular dynamics, and free energy calculations
暂无分享,去创建一个
Lars Olsen | Nico P E Vermeulen | Flemming Steen Jørgensen | Luigi Capoferri | Rasmus Leth | P. Grootenhuis | N. Vermeulen | L. Olsen | E. ter Haar | D. Geerke | F. Jørgensen | A. K. Mohanty | J. Commandeur | E. Vottero | Peter D J Grootenhuis | Ernst ter Haar | Daan P Geerke | Arun K Mohanty | Eduardo Vottero | Jan N M Commandeur | Luigi Capoferri | Rasmus Leth | Arun K Mohanty
[1] P. Grootenhuis,et al. Efficient Screening of Cytochrome P450 BM3 Mutants for Their Metabolic Activity and Diversity toward a Wide Set of Drug-Like Molecules in Chemical Space , 2011, Drug Metabolism and Disposition.
[2] A. Munro,et al. Key Mutations Alter the Cytochrome P450 BM3 Conformational Landscape and Remove Inherent Substrate Bias* , 2013, The Journal of Biological Chemistry.
[3] Tristan R. Brown,et al. Engineered Bacterial Mimics of Human Drug Metabolizing Enzyme CYP2C9 , 2011 .
[4] A. Sali,et al. Statistical potential for assessment and prediction of protein structures , 2006, Protein science : a publication of the Protein Society.
[5] F. Guengerich. Introduction: Human metabolites in safety testing (MIST) issue. , 2009, Chemical research in toxicology.
[6] T. Poulos,et al. Structure of a cytochrome P450-redox partner electron-transfer complex. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[7] T. Poulos,et al. Modeling protein-substrate interactions in the heme domain of cytochrome P450(BM-3). , 1994, Acta crystallographica. Section D, Biological crystallography.
[8] William L. Jorgensen,et al. Quantum and statistical mechanical studies of liquids. 25. Solvation and conformation of methanol in water , 1983 .
[9] N. Vermeulen,et al. The role of protein plasticity in computational rationalization studies on regioselectivity in testosterone hydroxylation by cytochrome P450 BM3 mutants. , 2012, Current drug metabolism.
[10] W. L. Jorgensen,et al. Quantum and statistical mechanical studies of liquids. Part 22. Pressure dependence of mixing enantiomeric liquids: 1,2-dichloropropane , 1982 .
[11] D. Jerina,et al. Migration of deuterium during hydroxylation of aromatic substrates by liver microsomes. I. Influence of ring substitutents. , 1968, Archives of biochemistry and biophysics.
[12] Lars Olsen,et al. Prediction of activation energies for hydrogen abstraction by cytochrome p450. , 2006, Journal of medicinal chemistry.
[13] Jeremy N. Harvey,et al. QM/MM modeling of benzene hydroxylation in human cytochrome P450 2C9. , 2008, The journal of physical chemistry. A.
[14] Lars Ridder,et al. Mechanism and structure-reactivity relationships for aromatic hydroxylation by cytochrome P450. , 2004, Organic & biomolecular chemistry.
[15] Thomas E. Cheatham,et al. Quantum mechanically derived AMBER‐compatible heme parameters for various states of the cytochrome P450 catalytic cycle , 2012, J. Comput. Chem..
[16] Junmei Wang,et al. Development and testing of a general amber force field , 2004, J. Comput. Chem..
[17] Ben M. Webb,et al. Comparative Protein Structure Modeling Using MODELLER , 2016, Current protocols in bioinformatics.
[18] Carsten Kutzner,et al. GROMACS 4: Algorithms for Highly Efficient, Load-Balanced, and Scalable Molecular Simulation. , 2008, Journal of chemical theory and computation.
[19] N. Vermeulen,et al. R OLE OF RESIDUE 87 IN THE ACTIVITY AND REGIOSELECTIVITY OF CLOZAPINE METABOLISM BY DRUG METABOLIZING BM 3 M 11 : APPLICATION FOR STRUCTURAL CHARACTERIZATION OF CLOZAPINE GSH CONJUGATES , 2012 .
[20] N. Vermeulen,et al. Identification of critical residues in novel drug metabolizing mutants of cytochrome P450 BM3 using random mutagenesis. , 2007, Journal of medicinal chemistry.
[21] Nico P E Vermeulen,et al. Application of engineered cytochrome P450 mutants as biocatalysts for the synthesis of benzylic and aromatic metabolites of fenamic acid NSAIDs. , 2014, Bioorganic & medicinal chemistry.
[22] Jeffrey P. Jones,et al. Differential roles of Arg97, Asp293, and Arg108 in enzyme stability and substrate specificity of CYP2C9. , 2004, Molecular Pharmacology.
[23] N. Vermeulen,et al. Application of drug metabolising mutants of cytochrome P450 BM3 (CYP102A1) as biocatalysts for the generation of reactive metabolites. , 2008, Chemico-biological interactions.
[24] K Schulten,et al. VMD: visual molecular dynamics. , 1996, Journal of molecular graphics.
[25] Lars Olsen,et al. Prediction of activation energies for aromatic oxidation by cytochrome P450. , 2008, The journal of physical chemistry. A.
[26] F. Guengerich,et al. Cytochrome P450s and other enzymes in drug metabolism and toxicity , 2006, The AAPS Journal.
[27] Santosh Kumar. Engineering cytochrome P450 biocatalysts for biotechnology, medicine and bioremediation , 2010, Expert opinion on drug metabolism & toxicology.
[28] Clemens Vonrhein,et al. Data processing and analysis with the autoPROC toolbox , 2011, Acta crystallographica. Section D, Biological crystallography.
[29] P. Emsley,et al. Features and development of Coot , 2010, Acta crystallographica. Section D, Biological crystallography.
[30] K. R. Marshall,et al. P450 BM3: the very model of a modern flavocytochrome. , 2002, Trends in biochemical sciences.
[31] R. Friesner,et al. Thermal equilibrium of high- and low-spin forms of cytochrome P450 BM-3: repositioning of the substrate? , 2005, Journal of the American Chemical Society.
[32] N. Vermeulen,et al. Structural rationalization of novel drug metabolizing mutants of cytochrome P450 BM3 , 2008, Proteins.
[33] T. Poulos,et al. The structure of the cytochrome p450BM-3 haem domain complexed with the fatty acid substrate, palmitoleic acid , 1997, Nature Structural Biology.
[34] M. Honing,et al. Role of residue 87 in substrate selectivity and regioselectivity of drug-metabolizing cytochrome P450 CYP102A1 M11 , 2011, JBIC Journal of Biological Inorganic Chemistry.
[35] Chris de Graaf,et al. Topological role of cytochrome P450 2D6 active site residues. , 2006, Archives of biochemistry and biophysics.
[36] Chris Morley,et al. Open Babel: An open chemical toolbox , 2011, J. Cheminformatics.
[37] Thomas Stützle,et al. An ant colony optimization approach to flexible protein–ligand docking , 2007, Swarm Intelligence.
[38] T. Darden,et al. A smooth particle mesh Ewald method , 1995 .
[39] D. Beveridge,et al. Free energy via molecular simulation: applications to chemical and biomolecular systems. , 1989, Annual review of biophysics and biophysical chemistry.
[40] Emilio Gallicchio,et al. Conformational equilibrium of cytochrome P450 BM-3 complexed with N-palmitoylglycine: a replica exchange molecular dynamics study. , 2006, Journal of the American Chemical Society.
[41] S. D. Beer,et al. Regio‐ and Stereoselective Hydroxylation of Optically Active α‐Ionone Enantiomers by Engineered Cytochrome P450 BM3 Mutants , 2012 .
[42] S. Shaik,et al. A Model “Rebound” Mechanism of Hydroxylation by Cytochrome P450: Stepwise and Effectively Concerted Pathways, and Their Reactivity Patterns , 2000 .
[43] H. Toogood,et al. Novel haem co-ordination variants of flavocytochrome P450BM3. , 2008, The Biochemical journal.
[44] A. Mark,et al. Avoiding singularities and numerical instabilities in free energy calculations based on molecular simulations , 1994 .
[45] Jean‐Didier Maréchal,et al. Filling a hole in cytochrome P450 BM3 improves substrate binding and catalytic efficiency. , 2007, Journal of molecular biology.
[46] Christine M. Bathelt,et al. Quantum Mechanics/Molecular Mechanics Modeling of Regioselectivity of Drug Metabolism in Cytochrome P450 2C9 , 2013, Journal of the American Chemical Society.
[47] M. Machius,et al. Pivotal role of water in the mechanism of P450BM-3. , 2001, Biochemistry.
[48] Berk Hess,et al. LINCS: A linear constraint solver for molecular simulations , 1997, J. Comput. Chem..
[49] S. Bell,et al. P450(BM3) (CYP102A1): connecting the dots. , 2012, Chemical Society reviews.
[50] Adrian J Mulholland,et al. Understanding the determinants of selectivity in drug metabolism through modeling of dextromethorphan oxidation by cytochrome P450 , 2011, Proceedings of the National Academy of Sciences.
[51] H. Berendsen,et al. Molecular dynamics with coupling to an external bath , 1984 .
[52] Ulrich Schwaneberg,et al. P450 BM3 crystal structures reveal the role of the charged surface residue Lys/Arg184 in inversion of enantioselective styrene epoxidation. , 2013, Chemical communications.
[53] Chris Oostenbrink,et al. Free Energy Calculations Give Insight into the Stereoselective Hydroxylation of α-Ionones by Engineered Cytochrome P450 BM3 Mutants , 2012, J. Chem. Inf. Model..
[54] T. Omura,et al. THE CARBON MONOXIDE-BINDING PIGMENT OF LIVER MICROSOMES. I. EVIDENCE FOR ITS HEMOPROTEIN NATURE. , 1964, The Journal of biological chemistry.
[55] S. Shaik,et al. A proton-shuttle mechanism mediated by the porphyrin in benzene hydroxylation by cytochrome p450 enzymes. , 2003, Journal of the American Chemical Society.
[56] T. Halgren. Merck molecular force field. I. Basis, form, scope, parameterization, and performance of MMFF94 , 1996, J. Comput. Chem..
[57] V. Hornak,et al. Comparison of multiple Amber force fields and development of improved protein backbone parameters , 2006, Proteins.
[58] Randy J. Read,et al. Phaser crystallographic software , 2007, Journal of applied crystallography.
[59] Thomas Stützle,et al. Empirical Scoring Functions for Advanced Protein-Ligand Docking with PLANTS , 2009, J. Chem. Inf. Model..
[60] M. Joyce,et al. A Single Mutation in Cytochrome P450 BM3 Induces the Conformational Rearrangement Seen upon Substrate Binding in the Wild-type Enzyme* , 2004, Journal of Biological Chemistry.