Crystal structure of the alkaline proteinase Savinase from Bacillus lentus at 1.4 A resolution.
暂无分享,去创建一个
K S Wilson | C. Betzel | S. Hastrup | K. Wilson | C Betzel | S Klupsch | G Papendorf | S Hastrup | S Branner | S. Branner | S. Klupsch | G. Papendorf | Christian Betzel | Keith S. Wilson
[1] C. Frömmel,et al. Complete primary structure of thermitase from Thermoactinomyces vulgaris and its structural features related to the subtilisin‐type proteinases , 1985 .
[2] W. Ebeling,et al. Proteinase K from Tritirachium album Limber. , 1974, European journal of biochemistry.
[3] Emil L. Smith,et al. 16 Subtilisins: Primary Structure, Chemical and Physical Properties , 1971 .
[4] G A Petsko,et al. The refined crystal structure of subtilisin Carlsberg at 2.5 A resolution. , 1988, Protein engineering.
[5] C. Betzel,et al. Molecular dynamics refinement of a thermitase-eglin-c complex at 1.98 A resolution and comparison of two crystal forms that differ in calcium content. , 1989, Journal of molecular biology.
[6] C. Frömmel,et al. Calcium ion binding by thermitase , 1989 .
[7] P. Carter,et al. Engineering subtilisin BPN′ for site‐specific proteolysis , 1989, Proteins.
[8] K S Wilson,et al. Crystal structure of thermitase at 1.4 A resolution. , 1990, Journal of molecular biology.
[9] C. Milo,et al. Role of bound calcium ions in thermostable, proteolytic enzymes. Separation of intrinsic and calcium ion contributions to the kinetic thermal stability. , 1976, Biochemistry.
[10] A. Fersht,et al. Rational modification of enzyme catalysis by engineering surface charge , 1987, Nature.
[11] P. Y. Chou,et al. Conformational parameters for amino acids in helical, beta-sheet, and random coil regions calculated from proteins. , 1974, Biochemistry.
[12] T. Poulos,et al. The engineering of binding affinity at metal ion binding sites for the stabilization of proteins: subtilisin as a test case. , 1988, Biochemistry.
[13] J. Kraut,et al. An x-ray crystallographic study of the binding of peptide chloromethyl ketone inhibitors to subtilisin BPN'. , 1972, Biochemistry.
[14] J. Kraut,et al. Polypeptide halomethyl ketones bind to serine proteases as analogs of the tetrahedral intermediate. X-ray crystallographic comparison of lysine- and phenylalanine-polypeptide chloromethyl ketone-inhibited subtilisin. , 1976, The Journal of biological chemistry.
[15] K. Jany,et al. Amino acid sequence of proteinase K from the mold Tritirachium album Limber , 1986 .
[16] D. Brömme,et al. Enzyme-substrate interactions in the hydrolysis of peptide substrates by thermitase, subtilisin BPN', and proteinase K. , 1986, Archives of biochemistry and biophysics.
[17] C. Betzel,et al. Three-dimensional structure of proteinase K at 0.15-nm resolution. , 1988, European journal of biochemistry.
[18] E. Baker,et al. Crystallographic refinement of the structure of actinidin at 1.7 Å resolution by fast Fourier least‐squares methods , 1980 .
[19] H. Matsuzawa,et al. Nucleotide sequence of the gene for aqualysin I (a thermophilic alkaline serine protease) of Thermus aquaticus YT-1 and characteristics of the deduced primary structure of the enzyme. , 1988, European journal of biochemistry.
[20] J. A. Moore,et al. Bacillus firmus-Bacillus lentus: a Series or One Species? , 1977 .
[21] G. Voordouw,et al. The role of bound calcium ions in thermostable, proteolytic enzymes. I. Studies on thermomycolase, the thermostable protease fron the fungus Malbranchea pulchella. , 1975, Biochemistry.
[22] D. Davies,et al. [25] Protein crystallization: Micro techniques involving vapor diffusion , 1971 .
[23] R. Martin,et al. Terbium (III) emission as a probe of calcium(II) binding sites in proteins. , 1976, Journal of the American Chemical Society.
[24] K S Wilson,et al. Crystallization and preliminary X-ray diffraction studies of an alkaline protease from Bacillus lentus. , 1988, Journal of molecular biology.
[25] E. L. Smith,et al. Subtilisin Carlsberg. V. The complete sequence; comparison with subtilisin BPN'; evolutionary relationships. , 1968, The Journal of biological chemistry.
[26] P Gros,et al. Inclusion of thermal motion in crystallographic structures by restrained molecular dynamics. , 1990, Science.
[27] V. Luzzati,et al. Traitement statistique des erreurs dans la determination des structures cristallines , 1952 .
[28] M. Karplus,et al. Crystallographic R Factor Refinement by Molecular Dynamics , 1987, Science.
[29] R. Gordon,et al. The Bacillus firmus–Bacillus lentus Complex and pH 7·0 Variants of Some Alkalophilic Strains , 1982 .
[30] J E Wampler,et al. Occurrence and role of cis peptide bonds in protein structures. , 1990, Journal of molecular biology.
[31] M. Sternberg,et al. A predicted three-dimensional structure of human cytochrome P450: implications for substrate specificity. , 1991, Protein engineering.
[32] H. Berendsen,et al. The α-helix dipole and the properties of proteins , 1978, Nature.
[33] W. V. Gunsteren,et al. Testing the method of crystallographic refinement using molecular dynamics , 1989 .
[34] R. Huber,et al. Three‐dimensional structure of porcine procarboxypeptidase B: a structural basis of its inactivity. , 1991, The EMBO journal.
[35] W. Kabsch,et al. Dictionary of protein secondary structure: Pattern recognition of hydrogen‐bonded and geometrical features , 1983, Biopolymers.
[36] C. Betzel,et al. Thermitase and proteinase K: a comparison of the refined three-dimensional structures of the native enzymes. , 1990, Protein engineering.
[37] N. Genov,et al. Complete amino acid sequence of alkaline mesentericopeptidase , 1986 .
[38] G. N. Ramachandran,et al. Stereochemical criteria for polypeptide and protein chain conformations. II. Allowed conformations for a pair of peptide units. , 1965, Biophysical journal.
[39] R. C. Agarwal. A new least‐squares refinement technique based on the fast Fourier transform algorithm: erratum , 1978 .
[40] R. Kretsinger,et al. Calcium-binding proteins. , 1976, Annual review of biochemistry.
[41] David M. Blow,et al. Structure and mechanism of chymotrypsin , 1976 .
[42] J. Drenth,et al. Subtilisin Novo. The three-dimensional structure and its comparison with subtilisin BPN'. , 1972, European journal of biochemistry.
[43] Alan R. Fersht,et al. Prediction of electrostatic effects of engineering of protein charges , 1987, Nature.
[44] Djordje Musil,et al. The high-resolution X-ray crystal structure of the complex formed between subtilisin Carlsberg and eglin c, an elastase inhibitor from the leech Hirudo medicinalis Structural analysis, subtilisin structure and interface geometry , 1987 .
[45] J. Kraut,et al. Structure of Subtilisin BPN′ at 2.5 Å Resolution , 1969, Nature.
[46] E N Baker,et al. Structure of actinidin, after refinement at 1.7 A resolution. , 1980, Journal of molecular biology.
[47] M. Ultsch,et al. The three-dimensional structure of Bacillus amyloliquefaciens subtilisin at 1.8 A and an analysis of the structural consequences of peroxide inactivation. , 1991, The Journal of biological chemistry.
[48] Crystal structure of an alkaline protease from Bacillus alcalophilus at 2.4Åresolution , 1990, FEBS letters.
[49] P. Y. Chou,et al. Prediction of protein conformation. , 1974, Biochemistry.
[50] T. A. Jones,et al. A graphics model building and refinement system for macromolecules , 1978 .
[51] A. Wilson,et al. The probability distribution of X-ray intensities , 1949 .
[52] E. L. Smith,et al. Subtilisin BPN. VII. Isolation of cyanogen bromide peptides and the complete amino acid sequence. , 1967, The Journal of biological chemistry.
[53] T. Poulos,et al. Proteases of enhanced stability: Characteization of a thermostable variant of subtilisin , 1986, Proteins.
[54] M. James,et al. Structural comparison of two serine proteinase-protein inhibitor complexes: eglin-c-subtilisin Carlsberg and CI-2-subtilisin Novo. , 1988, Biochemistry.
[55] J. Kraut. Serine proteases: structure and mechanism of catalysis. , 1977, Annual review of biochemistry.
[56] A. Lesk,et al. The relation between the divergence of sequence and structure in proteins. , 1986, The EMBO journal.
[57] D. Estell,et al. Subtilisin--an enzyme designed to be engineered. , 1988, Trends in biochemical sciences.
[58] A. Berger,et al. On the size of the active site in proteases. I. Papain. , 1967, Biochemical and biophysical research communications.
[59] T. Poulos,et al. Protein engineering of subtilisin BPN': enhanced stabilization through the introduction of two cysteines to form a disulfide bond. , 1987, Biochemistry.
[60] G J Williams,et al. The Protein Data Bank: a computer-based archival file for macromolecular structures. , 1977, Journal of molecular biology.
[61] B. Matthews. Solvent content of protein crystals. , 1968, Journal of molecular biology.