Direct observation by X‐ray analysis of the tetrahedral “intermediate” of aspartic proteinases
暂无分享,去创建一个
T L Blundell | A Sali | T. Blundell | A. Sali | B. Dominy | J. Cooper | D J Hoover | B. Veerapandian | J B Cooper | B W Dominy | B Veerapandian | R L Rosati | D B Damon | D. Hoover | D. B. Damon | R. L. Rosati
[1] F. Golley,et al. Structure and Function , 2002, Science's STKE.
[2] T. Blundell,et al. X-ray analyses of aspartic proteinases. The three-dimensional structure at 2.1 A resolution of endothiapepsin. , 1994, Journal of molecular biology.
[3] T L Blundell,et al. X-ray studies of aspartic proteinase-statine inhibitor complexes. , 1991, Biochemistry.
[4] Tom Blundell,et al. The active site of aspartic proteinases , 1991, FEBS letters.
[5] A. Fedorov,et al. Molecular and crystal structures of monoclinic porcine pepsin refined at 1.8 A resolution. , 1990, Journal of molecular biology.
[6] T. Blundell,et al. X-ray analyses of aspartic proteinases. II. Three-dimensional structure of the hexagonal crystal form of porcine pepsin at 2.3 A resolution. , 1990, Journal of molecular biology.
[7] J. Pitts,et al. Protein engineering of chymosin; modification of the optimum pH of enzyme catalysis. , 1990, Protein engineering.
[8] T L Blundell,et al. X-ray analyses of aspartic proteinases. III Three-dimensional structure of endothiapepsin complexed with a transition-state isostere inhibitor of renin at 1.6 A resolution. , 1990, Journal of molecular biology.
[9] John P. Overington,et al. X-ray analysis of HIV-1 proteinase at 2.7 Å resolution confirms structural homology among retroviral enzymes , 1989, Nature.
[10] M. Jaskólski,et al. Conserved folding in retroviral proteases: crystal structure of a synthetic HIV-1 protease. , 1989, Science.
[11] T. Blundell,et al. High‐resolution X‐ray diffraction study of the complex between endothiapepsin and an oligopeptide inhibitor: the analysis of the inhibitor binding and description of the rigid body shift in the enzyme. , 1989, The EMBO journal.
[12] Maria Miller,et al. Crystal structure of a retroviral protease proves relationship to aspartic protease family , 1989, Nature.
[13] E. Padlan,et al. Binding of a reduced peptide inhibitor to the aspartic proteinase from Rhizopus chinensis: implications for a mechanism of action. , 1987, Proceedings of the National Academy of Sciences of the United States of America.
[14] T L Blundell,et al. On the rational design of renin inhibitors: X-ray studies of aspartic proteinases complexed with transition-state analogues. , 1987, Biochemistry.
[15] K. Fearon,et al. Fluoro ketone containing peptides as inhibitors of human renin. , 1987, Journal of medicinal chemistry.
[16] G. Cohen,et al. Structure and refinement at 1.8 A resolution of the aspartic proteinase from Rhizopus chinensis. , 1987, Journal of molecular biology.
[17] L. Polgár. The mechanism of action of aspartic proteases involves ‘push‐pull’ catalysis , 1987, FEBS letters.
[18] T. L. Blundell,et al. High resolution X-ray analyses of renin inhibitor-aspartic proteinase complexes , 1987, Nature.
[19] W. Watt,et al. Design and synthesis of potent and specific renin inhibitors containing difluorostatine, difluorostatone, and related analogues. , 1986, Journal of medicinal chemistry.
[20] B. Dunn,et al. A systematic series of synthetic chromophoric substrates for aspartic proteinases. , 1986, The Biochemical journal.
[21] R. Read. Improved Fourier Coefficients for Maps Using Phases from Partial Structures with Errors , 1986 .
[22] F. Salituro,et al. Pepsin-catalysed addition of water to a ketomethylene peptide isostere: observation of the tetrahedral species by 13C-nuclear-magnetic-resonance spectroscopy. , 1985, Biochemical Society Transactions.
[23] W. Kati,et al. Difluorostatine- and difluorostatone-containing peptides as potent and specific renin inhibitors. , 1985, Journal of medicinal chemistry.
[24] David S. Moss,et al. Restrained structure-factor least-squares refinement of protein structures using a vector processing computer , 1985 .
[25] M. James,et al. Stereochemical analysis of peptide bond hydrolysis catalyzed by the aspartic proteinase penicillopepsin. , 1985, Biochemistry.
[26] F. Salituro,et al. Inhibition of aspartic proteases by pepstatin and 3-methylstatine derivatives of pepstatin. Evidence for collected-substrate enzyme inhibition. , 1985, Biochemistry.
[27] M. Gelb,et al. Fluoro ketone inhibitors of hydrolytic enzymes. , 1985, Biochemistry.
[28] T. Blundell,et al. The high resolution structure of endothiapepsin , 1985 .
[29] A. Fedorov,et al. Structure of ethanol-inhibited porcine pepsin at 2-A resolution and binding of the methyl ester of phenylalanyl-diiodotyrosine to the enzyme. , 1984, The Journal of biological chemistry.
[30] M. James,et al. Structure and refinement of penicillopepsin at 1.8 A resolution. , 1983, Journal of molecular biology.
[31] D. Davies,et al. Three-dimensional structure of the complex of the Rhizopus chinensis carboxyl proteinase and pepstatin at 2.5-A resolution. , 1982, Biochemistry.
[32] M. James,et al. Conformational flexibility in the active sites of aspartyl proteinases revealed by a pepstatin fragment binding to penicillopepsin. , 1982, Proceedings of the National Academy of Sciences of the United States of America.
[33] G. M. Smith,et al. Electronic distributions within protein phenylalanine aromatic rings are reflected by the three-dimensional oxygen atom environments. , 1982, Proceedings of the National Academy of Sciences of the United States of America.
[34] D. Rich,et al. Direct carbon-13 NMR evidence for a tetrahedral intermediate in the binding of a pepstatin analog to porcine pepsin , 1982 .
[35] T. A. Jones,et al. A graphics model building and refinement system for macromolecules , 1978 .
[36] G J Williams,et al. The Protein Data Bank: a computer-based archival file for macromolecular structures. , 1977, Journal of molecular biology.
[37] C. Bunn,et al. An x-ray crystallographic study of the rennin-like enzyme of Endothia parasitica. , 1970, Journal of molecular biology.
[38] R. Henderson. Structure of crystalline alpha-chymotrypsin. IV. The structure of indoleacryloyl-alpha-chyotrypsin and its relevance to the hydrolytic mechanism of the enzyme. , 1970, Journal of molecular biology.
[39] T. Aoyagi,et al. Pepstatin, a new pepsin inhibitor produced by Actinomycetes. , 1970, The Journal of antibiotics.
[40] J. Pople,et al. Theory of Molecular Interactions. I. Molecular Orbital Studies of Water Polymers Using a Minimal Slater‐Type Basis , 1970 .
[41] D. Davies,et al. Structure and Function of the Aspartic Proteinases , 1990, Advances in Experimental Medicine and Biology.
[42] D. Davies,et al. The structure and function of the aspartic proteinases. , 1990 .
[43] Eugene S. Kryachko,et al. Theory of molecular interactions , 1986 .
[44] D. Rich,et al. Synthesis of analogues of the carboxyl protease inhibitor pepstatin. Effects of structure on inhibition of pepsin and renin. , 1980, Journal of medicinal chemistry.
[45] P. Deslongchamps. Stereoelectronic control in the cleavage of tetrahedral intermediates in the hydrolysis of esters and amides , 1975 .
[46] F. C. Bernstein,et al. \the Protein Data Bank: a Computer-based Archival Le for Macromolecular Structures," , 2022 .