Solvent water interactions within the active site of the membrane type I matrix metalloproteinase.
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W. Thiel | W. Lubitz | T. Vasilevskaya | H. Ogata | N. Cox | M. Havenith | Moran Grossman | I. Sagi | Elena Decaneto | Y. Kutin
[1] Aaas News,et al. Book Reviews , 1893, Buffalo Medical and Surgical Journal.
[2] R. Sarpong,et al. Bio-inspired synthesis of xishacorenes A, B, and C, and a new congener from fuscol† †Electronic supplementary information (ESI) available. See DOI: 10.1039/c9sc02572c , 2019, Chemical science.
[3] Armando Rossello,et al. Sugar‐Based Arylsulfonamide Carboxylates as Selective and Water‐Soluble Matrix Metalloproteinase‐12 Inhibitors , 2016, ChemMedChem.
[4] W. Lubitz,et al. Pressure and Temperature Effects on the Activity and Structure of the Catalytic Domain of Human MT1-MMP. , 2015, Biophysical journal.
[5] Walter Thiel,et al. Mechanism of proteolysis in matrix metalloproteinase‐2 revealed by QM/MM modeling , 2015, J. Comput. Chem..
[6] W. Lubitz,et al. A caged substrate peptide for matrix metalloproteinases , 2015, Photochemical & photobiological sciences : Official journal of the European Photochemistry Association and the European Society for Photobiology.
[7] R. Vandenbroucke,et al. Is there new hope for therapeutic matrix metalloproteinase inhibition? , 2014, Nature Reviews Drug Discovery.
[8] D. Pantazis,et al. Electronic structural flexibility of heterobimetallic Mn/Fe cofactors: R2lox and R2c proteins. , 2014, Journal of the American Chemical Society.
[9] Alexey A. Sokol,et al. ChemShell—a modular software package for QM/MM simulations , 2014 .
[10] G. Fields,et al. Monitoring and Inhibiting MT1-MMP during Cancer Initiation and Progression , 2014, Cancers.
[11] W. Lubitz,et al. Crystallization and preliminary X-ray crystallographic analysis of the catalytic domain of membrane type 1 matrix metalloproteinase. , 2014, Acta Crystallographica Section F Structural Biology Communications.
[12] N. Ito,et al. MT-LOOP-dependent Localization of Membrane Type I Matrix Metalloproteinase (MT1-MMP) to the Cell Adhesion Complexes Promotes Cancer Cell Invasion* , 2013, The Journal of Biological Chemistry.
[13] W. Lubitz,et al. W-band ELDOR-detected NMR (EDNMR) spectroscopy as a versatile technique for the characterisation of transition metal–ligand interactions , 2013 .
[14] G. Natile,et al. Structure of matrix metalloproteinase-3 with a platinum-based inhibitor. , 2013, Chemical communications.
[15] A. Savitsky,et al. Preparation of cysteine-34-nitroxide spin labeled human α₁-microglobulin. , 2013, Protein expression and purification.
[16] E. Stura,et al. Simple Pseudo-dipeptides with a P2′ Glutamate , 2012, The Journal of Biological Chemistry.
[17] Ivano Bertini,et al. The catalytic domain of MMP‐1 studied through tagged lanthanides , 2012, FEBS letters.
[18] G. Murphy,et al. Membrane Type 1 Matrix Metalloproteinase (MT1-MMP) Ubiquitination at Lys581 Increases Cellular Invasion through Type I Collagen* , 2012, The Journal of Biological Chemistry.
[19] S. Siemann,et al. Preparation and characterization of cobalt-substituted anthrax lethal factor. , 2011, Biochemical and biophysical research communications.
[20] Gregg B Fields,et al. Correlated structural kinetics and retarded solvent dynamics at the metalloprotease active site , 2011, Nature Structural &Molecular Biology.
[21] Y. Takeishi,et al. Involvement of membrane type 1‐matrix metalloproteinase (MT1‐MMP) in RAGE activation signaling pathways , 2011, Journal of cellular physiology.
[22] O. Dym,et al. The intrinsic protein flexibility of endogenous protease inhibitor TIMP-1 controls its binding interface and affects its function. , 2010, Biochemistry.
[23] Dimas Suárez,et al. Peptide hydrolysis catalyzed by matrix metalloproteinase 2: a computational study. , 2008, The journal of physical chemistry. B.
[24] Frank Neese,et al. All-Electron Scalar Relativistic Basis Sets for Third-Row Transition Metal Atoms. , 2008, Journal of chemical theory and computation.
[25] Robert Huber,et al. Crystal structures of MMP-9 complexes with five inhibitors: contribution of the flexible Arg424 side-chain to selectivity. , 2007, Journal of molecular biology.
[26] Satya P. Gupta,et al. Quantitative structure-activity relationship studies on zinc-containing metalloproteinase inhibitors. , 2007, Chemical reviews.
[27] M. Milla,et al. Key feature of the catalytic cycle of TNF-α converting enzyme involves communication between distal protein sites and the enzyme catalytic core , 2007, Proceedings of the National Academy of Sciences.
[28] I. Bertini,et al. Snapshots of the reaction mechanism of matrix metalloproteinases. , 2006, Angewandte Chemie.
[29] Celestino Angeli,et al. A Simple Approximate Perturbation Approach to Quasi-degenerate Systems , 2006 .
[30] Laxmikant V. Kalé,et al. Scalable molecular dynamics with NAMD , 2005, J. Comput. Chem..
[31] F. Weigend,et al. Balanced basis sets of split valence, triple zeta valence and quadruple zeta valence quality for H to Rn: Design and assessment of accuracy. , 2005, Physical chemistry chemical physics : PCCP.
[32] P. Afonine,et al. A robust bulk-solvent correction and anisotropic scaling procedure , 2005, Acta crystallographica. Section D, Biological crystallography.
[33] Ivano Bertini,et al. Conformational variability of matrix metalloproteinases: beyond a single 3D structure. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[34] B. Wessler,et al. Magnetic circular dichroism and cobalt(II) binding equilibrium studies of Escherichia coli methionyl aminopeptidase. , 2004, Journal of the American Chemical Society.
[35] K. Frei,et al. Characterization of Mca-Lys-Pro-Leu-Gly-Leu-Dpa-Ala-Arg-NH2, a fluorogenic substrate with increased specificity constants for collagenases and tumor necrosis factor converting enzyme. , 2004, Analytical biochemistry.
[36] I. Bertini,et al. Paramagnetic metal ions in ligand screening: the Co(II) matrix metalloproteinase 12. , 2004, Angewandte Chemie.
[37] J. Foidart,et al. Crystal structure of the catalytic domain of MMP-16/MT3-MMP: characterization of MT-MMP specific features. , 2004, Journal of molecular biology.
[38] G. Scuseria,et al. Comparative assessment of a new nonempirical density functional: Molecules and hydrogen-bonded complexes , 2003 .
[39] S. C. Rogers,et al. QUASI: A general purpose implementation of the QM/MM approach and its application to problems in catalysis , 2003 .
[40] S. Weiss,et al. Membrane Type I Matrix Metalloproteinase Usurps Tumor Growth Control Imposed by the Three-Dimensional Extracellular Matrix , 2003, Cell.
[41] D. Petering,et al. Cobalt-substituted zinc finger 3 of transcription factor IIIA: interactions with cognate DNA detected by (31)P ENDOR spectroscopy. , 2003, Journal of the American Chemical Society.
[42] I. Bertini,et al. X-ray structures of binary and ternary enzyme-product-inhibitor complexes of matrix metalloproteinases. , 2003, Angewandte Chemie.
[43] Ian W. Davis,et al. Structure validation by Cα geometry: ϕ,ψ and Cβ deviation , 2003, Proteins.
[44] R. Cimiraglia,et al. n-electron valence state perturbation theory: A spinless formulation and an efficient implementation of the strongly contracted and of the partially contracted variants , 2002 .
[45] Frank Neese,et al. Prediction and interpretation of the 57Fe isomer shift in Mössbauer spectra by density functional theory , 2002 .
[46] Per E M Siegbahn,et al. Catalytic mechanism of matrix metalloproteinases: two-layered ONIOM study. , 2002, Inorganic chemistry.
[47] W. English,et al. Characterization of the Role of the “MT-loop” , 2001, The Journal of Biological Chemistry.
[48] H. Nar,et al. Crystal structure of human macrophage elastase (MMP-12) in complex with a hydroxamic acid inhibitor. , 2001, Journal of molecular biology.
[49] M De Maeyer,et al. Critical role of glutamic acid 202 in the enzymatic activity of stromelysin-1 (MMP-3). , 2001, European journal of biochemistry.
[50] D. Hupe,et al. A Rationalization of the Acidic pH Dependence for Stromelysin-1 (Matrix Metalloproteinase-3) Catalysis and Inhibition* , 2000, The Journal of Biological Chemistry.
[51] J. Calvete,et al. Crystal structure of the complex formed by the membrane type 1‐matrix metalloproteinase with the tissue inhibitor of metalloproteinases‐2, the soluble progelatinase A receptor , 1998, The EMBO journal.
[52] Mark A. Ratner,et al. 6-31G * basis set for atoms K through Zn , 1998 .
[53] Christoph van Wüllen,et al. Molecular density functional calculations in the regular relativistic approximation: Method, application to coinage metal diatomics, hydrides, fluorides and chlorides, and comparison with first-order relativistic calculations , 1998 .
[54] Alexander D. MacKerell,et al. All-atom empirical potential for molecular modeling and dynamics studies of proteins. , 1998, The journal of physical chemistry. B.
[55] J. Cha,et al. Site-directed mutagenesis of the active site glutamate in human matrilysin: investigation of its role in catalysis. , 1997, Biochemistry.
[56] Jean M. Severin,et al. Discovery of Potent Nonpeptide Inhibitors of Stromelysin Using SAR by NMR , 1997 .
[57] T. Volkert,et al. MAGNETIC CIRCULAR DICHROISM SPECTROSCOPY AS A PROBE OF GEOMETRIC AND ELECTRONIC STRUCTURE OF COBALT(II)-SUBSTITUTED PROTEINS : GROUND-STATE ZERO-FIELD SPLITTING AS A COORDINATION NUMBER INDICATOR , 1997 .
[58] G. Schiavo,et al. Metal substitution of tetanus neurotoxin. , 1997, The Biochemical journal.
[59] W Smith,et al. DL_POLY_2.0: a general-purpose parallel molecular dynamics simulation package. , 1996, Journal of molecular graphics.
[60] Christel M. Marian,et al. A mean-field spin-orbit method applicable to correlated wavefunctions , 1996 .
[61] M. Frisch,et al. Ab Initio Calculation of Vibrational Absorption and Circular Dichroism Spectra Using Density Functional Force Fields , 1994 .
[62] J. O'Connell,et al. Mutation of the active site glutamic acid of human gelatinase A: effects on latency, catalysis, and the binding of tissue inhibitor of metalloproteinases-1. , 1994, Biochemistry.
[63] A. Becke. Density-functional thermochemistry. III. The role of exact exchange , 1993 .
[64] C. Scholes,et al. Pulsed and continuous wave electron nuclear double resonance patterns of aquo protons coordinated in frozen solution to high spin MN2 , 1993 .
[65] J. Hermes,et al. Characterization of zinc-binding sites in human stromelysin-1: stoichiometry of the catalytic domain and identification of a cysteine ligand in the proenzyme. , 1992, Biochemistry.
[66] K. D. Collins,et al. Dihydroorotase from Escherichia coli. Substitution of Co(II) for the active site Zn(II). , 1991, The Journal of biological chemistry.
[67] W. Maret. Cobalt(II)-substituted class III alcohol and sorbitol dehydrogenases from human liver. , 1989, Biochemistry.
[68] Hans W. Horn,et al. ELECTRONIC STRUCTURE CALCULATIONS ON WORKSTATION COMPUTERS: THE PROGRAM SYSTEM TURBOMOLE , 1989 .
[69] Brian W. Matthews,et al. Structural basis of the action of thermolysin and related zinc peptidases , 1988 .
[70] D. J. Strydom,et al. Astacus protease, a zinc metalloenzyme , 1988 .
[71] C. Little,et al. A spectral study of cobalt(II)-substituted Bacillus cereus phospholipase C. , 1986, Biochemistry.
[72] L. Kuo,et al. Ground term splitting of high-spin cobalt(2+) ion as a probe of coordination structure. 1. Dependence of the splitting on coordination geometry , 1985 .
[73] L. Kuo,et al. Ground term splitting of high-spin cobalt(2+) ion as a probe of coordination structure. 2. The ligand environment of the active site metal ion of carboxypeptidase A in ester hydrolysis , 1985 .
[74] E. Westhead,et al. Kinetic and physical properties of Co2+ enolase. , 1984, The Journal of biological chemistry.
[75] J. Fox,et al. Proteolytic specificity and cobalt exchange of hemorrhagic toxin e, a zinc protease isolated from the venom of the western diamondback rattlesnake (Crotalus atrox). , 1983, Biochemistry.
[76] W. L. Jorgensen,et al. Comparison of simple potential functions for simulating liquid water , 1983 .
[77] V. Massey,et al. Metal binding to D-lactate dehydrogenase. , 1982, Biochemistry.
[78] J. Kägi,et al. Metal thiolate clusters in cobalt(II)-metallothionein. , 1981, Proceedings of the National Academy of Sciences of the United States of America.
[79] W. Maret,et al. Site-specific substituted cobalt(II) horse liver alcohol dehydrogenases. Preparation and characterization in solution, crystalline and immobilized state. , 1979, European journal of biochemistry.
[80] A. Sytkowski,et al. Cobalt exchange in horse liver alcohol dehydrogenase. , 1978, Biochemistry.
[81] G. Ciccotti,et al. Numerical Integration of the Cartesian Equations of Motion of a System with Constraints: Molecular Dynamics of n-Alkanes , 1977 .
[82] B. Vallee,et al. Magnetic circular dichroic spectra of cobalt(II) substituted metalloenzymes. , 1975, Biochemistry.
[83] B. Vallee,et al. Metal substitutions and inhibition of thermolysin: spectra of the cobalt enzyme. , 1974, The Journal of biological chemistry.
[84] B. Vallee,et al. Tryptophan quantitation by magnetic circular dichroism in native and modified proteins. , 1973, Biochemistry.
[85] Vallee Bl,et al. Spectral properties of cobalt carboxypeptidase. The effects of substrates and inhibitors. , 1971 .
[86] W. Rutter,et al. Role of metals in the class II aldolases. Spectral studies of cobalt yeast aldolase. , 1971, Biochemistry.
[87] R J Williams,et al. Metalloenzymes: the entatic nature of their active sites. , 1968, Proceedings of the National Academy of Sciences of the United States of America.
[88] F. Cotton,et al. Absorption Intensities and Electronic Structures of Tetrahedral Cobalt(II) Complexes , 1962 .
[89] W. Marsden. I and J , 2012 .
[90] W. Lubitz,et al. A tunable general purpose Q-band resonator for CW and pulse EPR/ENDOR experiments with large sample access and optical excitation. , 2012, Journal of magnetic resonance.
[91] Frank Neese,et al. The ORCA program system , 2012 .
[92] R. Verma. Hydroxamic acids as matrix metalloproteinase inhibitors. , 2012, Experientia supplementum.
[93] Satya P. Gupta. Matrix Metalloproteinase Inhibitors , 2012, Experientia Supplementum.
[94] Satya P. Gupta. Matrix metalloproteinase inhibitors: specificity of binding and structure-activity relationships. , 2012, Experientia supplementum.
[95] B. Bennett. EPR of Cobalt-Substituted Zinc Enzymes , 2010 .
[96] Alexei Vagin,et al. Molecular replacement with MOLREP. , 2010, Acta crystallographica. Section D, Biological crystallography.
[97] Walter Thiel,et al. Linear scaling geometry optimisation and transition state search in hybrid delocalised internal coordinates , 2000 .
[98] G. Fields,et al. Human matrix metalloproteinase specificity studies using collagen sequence-based synthetic peptides. , 1996, Biopolymers.
[99] R. Stein,et al. Thioester hydrolysis by matrix metalloproteinases. , 1994, Archives of biochemistry and biophysics.
[100] W. Maret,et al. Cobalt as probe and label of proteins. , 1993, Methods in enzymology.
[101] L. Banci,et al. Spectral-structural correlations in high-spin cobalt(II) complexes , 1982 .
[102] G. Baldwin,et al. A spectroscopic study of metal ion and ligand binding to β-lactamase II , 1980 .