Use of homology modeling in conjunction with site-directed mutagenesis for analysis of structure-function relationships of mammalian cytochromes P450.
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[1] S. Grimm,et al. Molecular basis for a functionally unique cytochrome P450IIB1 variant. , 1991, The Journal of biological chemistry.
[2] R. Ornstein,et al. Binding free energy calculations for P450cam-substrate complexes. , 1996, Protein engineering.
[3] Mark D. Paulsen,et al. Predicting the product specificity and coupling of cytochrome P450cam , 1992, J. Comput. Aided Mol. Des..
[4] R. Ornstein,et al. Controlling the regiospecificity and coupling of cytochrome P450cam: T185F mutant increases coupling and abolishes 3‐hydroxynorcamphor product , 1993, Protein science : a publication of the Protein Society.
[5] R. Ornstein,et al. Using molecular modeling and molecular dynamics simulation to predict P450 oxidation products. , 1996, Methods in enzymology.
[6] Grazyna D. Szklarz,et al. Molecular modeling of cytochrome P450 3A4 , 1997, J. Comput. Aided Mol. Des..
[7] K. Korzekwa,et al. Mutagenesis study at a postulated hydrophobic region near the active site of aromatase cytochrome P450. , 1994, The Journal of biological chemistry.
[8] S. Wrighton,et al. The human hepatic cytochromes P450 involved in drug metabolism. , 1992, Critical reviews in toxicology.
[9] J Deisenhofer,et al. Crystal structure of hemoprotein domain of P450BM-3, a prototype for microsomal P450's. , 1993, Science.
[10] J. Halpert,et al. Interconversion of the androstenedione hydroxylase specificities of cytochromes P450 2B4 and 2B5 upon simultaneous site-directed mutagenesis of four key substrate recognition residues. , 1996, Archives of biochemistry and biophysics.
[11] G. Tucker,et al. Influence of amino acid residue 374 of cytochrome P-450 2D6 (CYP2D6) on the regio- and enantio-selective metabolism of metoprolol. , 1996, The Biochemical journal.
[12] O. Gotoh,et al. Substrate recognition sites in cytochrome P450 family 2 (CYP2) proteins inferred from comparative analyses of amino acid and coding nucleotide sequences. , 1992, The Journal of biological chemistry.
[13] T. Aoyama,et al. Sequence requirements for cytochrome P-450IIB1 catalytic activity. Alteration of the stereospecificity and regioselectivity of steroid hydroxylation by a simultaneous change of two hydrophobic amino acid residues to phenylalanine. , 1989, The Journal of biological chemistry.
[14] D W Nebert,et al. P450 superfamily: update on new sequences, gene mapping, accession numbers and nomenclature. , 1996, Pharmacogenetics.
[15] M. Sternberg,et al. A predicted three-dimensional structure of human cytochrome P450: implications for substrate specificity. , 1991, Protein engineering.
[16] D. G. Davis,et al. Engineering mouse P450coh to a novel corticosterone 15 alpha-hydroxylase and modeling steroid-binding orientation in the substrate pocket. , 1993, The Journal of biological chemistry.
[17] B C Finzel,et al. The 2.6-A crystal structure of Pseudomonas putida cytochrome P-450. , 1985, The Journal of biological chemistry.
[18] T. Poulos,et al. High-resolution crystal structure of cytochrome P450cam. , 1987, Journal of molecular biology.
[19] D. Lewis. Three-dimensional models of human and other mammalian microsomal P450s constructed from an alignment with P450102 (P450bm3). , 1995, Xenobiotica; the fate of foreign compounds in biological systems.
[20] D. Lewis,et al. Molecular modelling of CYP1A subfamily members based on an alignment with CYP102: rationalization of CYP1A substrate specificity in terms of active site amino acid residues. , 1996, Xenobiotica; the fate of foreign compounds in biological systems.
[21] S. Sligar,et al. Molecular recognition in cytochrome P-450: mechanism for the control of uncoupling reactions. , 1993, Biochemistry.
[22] J. Salerno,et al. Molecular modeling of the 3-D structure of cytochrome P-450scc. , 1992, Biochimica et biophysica acta.
[23] J Deisenhofer,et al. Crystal structure and refinement of cytochrome P450terp at 2.3 A resolution. , 1994, Journal of molecular biology.
[24] J. Peterson,et al. P450s: Structural similarities and functional differences , 1996, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[25] D. Lewis,et al. Molecular modelling of members of the P4502A subfamily: application to studies of enzyme specificity. , 1995, Xenobiotica; the fate of foreign compounds in biological systems.
[26] Nico P. E. Vermeulen,et al. A preliminary 3D model for cytochrome P450 2D6 constructed by homology model building , 1993, J. Comput. Aided Mol. Des..
[27] R. Lindberg,et al. Alteration of mouse cytochrome P450coh substrate specificity by mutation of a single amino-acid residue , 1989, Nature.
[28] E. Simpson,et al. A three‐dimensional model of aromatase cytochrome P450 , 1995, Protein science : a publication of the Protein Society.
[29] J Deisenhofer,et al. Structure and function of cytochromes P450: a comparative analysis of three crystal structures. , 1995, Structure.
[30] N. Vermeulen,et al. A three-dimensional protein model for human cytochrome P450 2D6 based on the crystal structures of P450 101, P450 102, and P450 108. , 1996, Chemical research in toxicology.
[31] J. Halpert,et al. Site-directed mutagenesis as a tool for molecular modeling of cytochrome P450 2B1. , 1995, Biochemistry.
[32] J. Halpert,et al. Site-directed mutagenesis of putative substrate recognition sites in cytochrome P450 2B11: importance of amino acid residues 114, 290, and 363 for substrate specificity. , 1994, Molecular pharmacology.
[33] W U Primrose,et al. A model for human cytochrome P450 2D6 based on homology modeling and NMR studies of substrate binding. , 1996, Biochemistry.
[34] S. Neidle,et al. A detailed molecular model for human aromatase , 1993, The Journal of Steroid Biochemistry and Molecular Biology.
[35] J. Halpert,et al. Role of residue 478 as a determinant of the substrate specificity of cytochrome P450 2B1. , 1992, Biochemistry.
[36] J. Halpert,et al. Engineering of cytochrome P450 2B1 specificity. Conversion of an androgen 16 beta-hydroxylase to a 15 alpha-hydroxylase. , 1993, The Journal of biological chemistry.
[37] James R. Halpert,et al. Alanine-scanning Mutagenesis of a Putative Substrate Recognition Site in Human Cytochrome P450 3A4 , 1997, The Journal of Biological Chemistry.
[38] J. Halpert,et al. Escherichia coli expression of site-directed mutants of cytochrome P450 2B1 from six substrate recognition sites: substrate specificity and inhibitor selectivity studies. , 1995, Chemical research in toxicology.
[39] J. Halpert,et al. Elucidation of amino acid residues critical for unique activities of rabbit cytochrome P450 2B5 using hybrid enzymes and reciprocal site-directed mutagenesis with rabbit cytochrome P450 2B4. , 1996, Archives of biochemistry and biophysics.
[40] J. Halpert,et al. Role of Residue 363 and 206 in Conversion of Cytochrome P450 2B1 from a Steroid 16-Hydroxylase to a 15α-Hydroxylase , 1994 .
[41] R. Ornstein,et al. Application of 3-dimensional homology modeling of cytochrome P450 2B1 for interpretation of site-directed mutagenesis results. , 1994, Journal of biomolecular structure & dynamics.
[42] J. Halpert,et al. Identification of three key residues in substrate recognition site 5 of human cytochrome P450 3A4 by cassette and site-directed mutagenesis. , 1997, Biochemistry.
[43] T. Poulos,et al. Structure of cytochrome P450eryF involved in erythromycin biosynthesis , 1995, Nature Structural Biology.
[44] Grazyna D. Szklarz,et al. Secobarbital-mediated Inactivation of Cytochrome P450 2B1 and Its Active Site Mutants , 1996, The Journal of Biological Chemistry.
[45] R. Ornstein,et al. A 175‐psec molecular dynamics simulation of camphor‐bound cytochrome P‐450cam , 1991, Proteins.
[46] F. Guengerich. Metabolic Reactions: Types of Reactions of Cytochrome P450 Enzymes , 1993 .
[47] D. Zhou,et al. Functional domains of aromatase cytochrome P450 inferred from comparative analyses of amino acid sequences and substantiated by site-directed mutagenesis experiments. , 1992, The Journal of biological chemistry.
[48] C. Mendelson,et al. Structure-function relationships of human aromatase cytochrome P-450 using molecular modeling and site-directed mutagenesis. , 1991, The Journal of biological chemistry.
[49] E. Simpson,et al. Functional domains of human aromatase cytochrome P450 characterized by linear alignment and site-directed mutagenesis. , 1993, Molecular endocrinology.
[50] J. Halpert,et al. Structural determinants of cytochrome P450 2B1 specificity: evidence for five substrate recognition sites. , 1994, Biochemistry.
[51] Michael J. E. Sternberg,et al. Evidence That Aspartic Acid 301 Is a Critical Substrate-Contact Residue in the Active Site of Cytochrome P450 2D6 (*) , 1995, The Journal of Biological Chemistry.