참고문헌
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- Anal. Biochem. v.155 A convenient fluorescent assay for vertebrate collagenases Bond, M. D.;D. S. Auld;R. R. Lobb
- J. Life Sci. v.9 Mutational Analysis of two conserved active site tyrosine residues in matrilysin Cha, J.
- Biochemistry v.36 Site-directed mutagenesis of the active glutamate in human matrilysin: Investigation of its role in catalysis Cha, J.;D. S. Auld
- Biochemistry v.35 Metal and pH dependence of heptapeptide catalysis by human stromlyein-1 catalytic domain Cha, J.;M. V. Pedersen;D. S. Auld
- J. Biol. Inorg. Chem. v.3 Selective replacement of the catalytic zinc of the human stromlyein-1 catalytic domain Cha, J.;M. V. Sorensen;Q-Z, Ye;D. S. Auld
- Acc. Chem. Res. v.22 Carboxypeptidase A Christianson, D. W.;W. N. Lipscomb
- J. Rheum. v.22 Elevated plasma stromelysin levels in arthritis Cheung, N. T.;D. J. Taylor;P. T. Dawes
- Biochemistry v.31 Biochemical characterization of matrilysin. activation conforms to the stepwise mechanisms proposed from other matrix metalloproteinases Crabbe, T.; F. Willenbrock;D. Eaton;P. Hynds;A. F. Carne;G. Murphy;A. J. P. Docherty
- Structure v.4 X-ray structure of a hydroxamate inhibitor complex of stromelysin catalytic domain and its comparison with members of the zinc metalloproteinase superfamily Dhanaraj. V.;Q.-Z. Ye;L. L. Johnson;D. J. Hupe;D. F. Ortwine;J. B. Jr. Dunbar;J. R. Rubin;A. Pablovsky;C. Humblet;T. L. Blundell
- Biochemistry v.31 Mechanistic studies on the human matrix metalloproteinase stromelysin Harrison, R. K.;B. Chang;L. Niedzwiecki;R. L. Stein
- Biochemistry v.38 Role of His-224 in the anomalous pH dependence of human stromelysin-1 Holman, C. M.;C.-C. Kan;M. R. Gehring;H. E. Van Wart
- J. Biol. Chem. v.270 Matrix metalloproteinase 7(matrilysin) from human rectal carcinoma cells Imai, K.;Y. Yokohama;I. Nakanishi;E. Ochuchi;Y. Fujii;N. Nakai;Y. Okada
- Biochem. J. v.295 Direct activation of human neutrophil procollagenase by recombinant stromelysin Knauper, V.;S. M. Wilhelm;P. K. Seperack;Y. A. DeClerck;K. E. Langley;A. Ostues;H. Tschesche
- Eur. J. Biochem. v.224 pH and temperature dependences of thermolysin catalysis, catalytic role of zinc-coordinated water Kunugi, S.;H. Hirohara;N. Ise
- Structure v.3 Structure of full-length porcine synovial collagenase reveals a C-terminal domain containing a calcium-linked, flour-bladed β-propeller Li, J.;P. Brick;M. C. O'Hare;T. Skarzynski;L. F. Lloyd;V. A. Curry;I. M. Clark;H. F. Bigg;B. L. Hazleman;T. E. Cawston;D. M. Blow
- Proc. Natl. Acad. Sci. U.S.A. v.70 Enzymatic activities of carobxypeptidase A's in solution and in crystals Lipscomb, W. N.
- Cancer Metastasis Rev. v.14 Contributions of tumor and stromal matrix metalloproteinases to tumor progression, invasion, and metastasis Macdougal, J. R.;L. M. Matrisian
- Arthritis Rheumatism v.38 Levels of circulating collagenase, stromelysin-1, and tissue inhibitor of matrix metalloproteinases 1 in patients with rheumatoid arthritis Manicourt, D.;N. Fuhimoto;K. Obata;E. M. A. Thonar
- Biochemistry v.30 Human fibroblast stromelysin catalytic domain: expression, purification, and characterization of a C-terminally truncated form Marcy, A. I.;L. L. Eiberger;R. Harison;H. K. Chan;N. I. Hutchinson;W. K. Hagmann;P. M. Cameron;D. A. Boulton;J. D. hermes
- Bioessays v.14 The matrix-degrading metalloproteinases Matrisian, L. M.
- Acc. Chem. Res. v.21 Structural basis of the action of thermolysin and related zinc peptidases Mattews, B. W.
- Biochem. J. v.248 Stromelysin is an activator of procollagenase. A study with natural and recombinant enzymes Murphy, G.;M. I. Cockett;P. E. Stephens;B. J. Smith;A. J. P. Docherty
- Biochemistry v.32 Comparative sequence specificities of human 72-and 92-kDa gelatinases(type Ⅳcollagenases)and PUMP(matrilysin) Netsel-Arnett, S.;Q. Sang;W. G. I. Moore;M. Navre;H. Birkedal-Hansen;H. E. Van Wart
- Biochemistry v.31 Substrate specificity of the human matrix metalloproteinase stromelysin and the development of continuous fluorometric assays Niedzwiecki, L.;J. Teahan;R. K. Harrison;R. L. Stein
- Anal. Biochem. v.183 A fluorescent oligopeptide energy transfer assay with broad applications for neutral proteases Ng. M.;D. S. Auld
- Arch. Biochem. Biophys. v.281 The effect of pH, temperature, and D₂O on the activity of porcine synovial collagenase and gelatinase Stack, M. S; R. D. Gray
- Biochemistry v.29 Fluorescent oligopeptide substrates for kinetic characterization of the specificity of Astacus protease Stocker, W.;M. Ng;D.S. Auld
- Eur. J. Biochem. v.157 Crystallographic structural analysis of phosphoramidates as inhibitors and transition-state analogs of thermolysin Tronrud, D. E.;A. F. Monzingo;B. W. Matthews
- Biochemistry v.35 Understanding the P₁' specificity of the matrix metalloproteinases: Effect of S₁' pocket mutations in matrilysin and stromelysin-1 Welch, A. R.;C. M. Holman;M. Huber;M. C. Brenner;M. F. Browner;H. E. Van Wart
- Biochem. Biophys. Acta v.1334 Catalytic domain comparisons of human fibroblast-type collagenase, stromelysin-1, and matrilysin Windsor, L. J.;D. L. Steele;S. B. LeBlanc;K. B. Taylor
- Biochemistry v.31 Purification and characterization of the human stromelysin catalytic domain expressed in Escherichia coli Ye, Q.;L. L. Johnson;D. J. Hupe;V. Baragi