Specificity of trypsin and chymotrypsin: loop-motion-controlled dynamic correlation as a determinant.
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[1] D A Agard,et al. Enzyme specificity under dynamic control: a normal mode analysis of alpha-lytic protease. , 1999, Journal of molecular biology.
[2] M. Pavlova,et al. Comparative chromosome and mitochondrial DNA analyses and phylogenetic relationships within common voles (Microtus, Arvicolidae) , 2004, Chromosome Research.
[3] R. Jernigan,et al. Inter-residue potentials in globular proteins and the dominance of highly specific hydrophilic interactions at close separation. , 1997, Journal of molecular biology.
[4] L. Gráf,et al. The three-dimensional structure of Asp189Ser trypsin provides evidence for an inherent structural plasticity of the protease. , 1999, European journal of biochemistry.
[5] J. Knowles,et al. Enzyme catalysis: not different, just better , 1991, Nature.
[6] N. Wingreen,et al. Flexibility of α-Helices: Results of a Statistical Analysis of Database Protein Structures , 2003 .
[7] David J. Osguthorpe,et al. Low Frequency Motion in Proteins , 1999 .
[8] J Deisenhofer,et al. Structure of the complex formed by bovine trypsin and bovine pancreatic trypsin inhibitor. II. Crystallographic refinement at 1.9 A resolution. , 1974, Journal of molecular biology.
[9] A. Berry,et al. A functional role for a flexible loop containing Glu182 in the class II fructose-1,6-bisphosphate aldolase from Escherichia coli. , 2002, Journal of molecular biology.
[10] David M. Blow,et al. The tortuous story of Asp…His…Ser: Structural analysis of α-chymotrypsin , 1997 .
[11] R. Hubbard,et al. Conformational change in the activation of lipase: An analysis in terms of low‐frequency normal modes , 1998, Protein science : a publication of the Protein Society.
[12] C. Coan,et al. Flexibility in the specificity site of serine proteases. , 1976, Biochemistry.
[13] Andrzej Kloczkowski,et al. Chain dimensions and fluctuations in random elastomeric networks. 1. Phantom Gaussian networks in the undeformed state , 1989 .
[14] W. Rutter,et al. Attempts to convert chymotrypsin to trypsin , 1996, FEBS letters.
[15] C. Tsou. The role of active site flexibility in enzyme catalysis. , 1998, Biochemistry. Biokhimiia.
[16] D. Blow,et al. Structure of alpha-chymotrypsin refined at 1.68 A resolution. , 1985, Journal of molecular biology.
[17] David A. Agard,et al. Enzyme specificity under dynamic control: A normal mode analysis of α-lytic protease , 1999 .
[18] L Szilágyi,et al. Electrostatic complementarity within the substrate-binding pocket of trypsin. , 1988, Proceedings of the National Academy of Sciences of the United States of America.
[19] 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.
[20] D. Blow. The tortuous story of Asp ... His ... Ser: structural analysis of alpha-chymotrypsin. , 1997, Trends in biochemical sciences.
[21] C. Craik,et al. Evolutionary Divergence of Substrate Specificity within the Chymotrypsin-like Serine Protease Fold* , 1997, The Journal of Biological Chemistry.
[22] A. Atilgan,et al. Vibrational Dynamics of Folded Proteins: Significance of Slow and Fast Motions in Relation to Function and Stability , 1998 .
[23] C. Tsou. Active Site Flexibility in Enzyme Catalysis a , 1998, Annals of the New York Academy of Sciences.
[24] M. Uhlén,et al. Accurate reconstruction of a known HIV-1 transmission history by phylogenetic tree analysis. , 1996, Proceedings of the National Academy of Sciences of the United States of America.
[25] W. Rutter,et al. Exogenous acetate reconstitutes the enzymatic activity of trypsin Asp189Ser. , 1994, Biochemistry.
[26] J. Otlewski,et al. Structural consequences of accommodation of four non-cognate amino acid residues in the S1 pocket of bovine trypsin and chymotrypsin. , 2004, Journal of molecular biology.
[27] A. Atilgan,et al. Direct evaluation of thermal fluctuations in proteins using a single-parameter harmonic potential. , 1997, Folding & design.
[28] R. Bywater,et al. Essential motions in a fungal lipase with bound substrate, covalently attached inhibitor and product , 2002, Journal of molecular recognition : JMR.
[29] Y. Engelborghs,et al. Modelling pathways of alpha-chymotrypsin activation and deactivation. , 1997, Protein engineering.
[30] C. Craik,et al. Structural basis of substrate specificity in the serine proteases , 1995, Protein science : a publication of the Protein Society.
[31] R Henderson,et al. Structure of crystalline alpha-chymotrypsin. 3. Crystallographic studies of substrates and inhibitors bound to the active site of alpha-chymotrypsin. , 1969, Journal of molecular biology.
[32] É. Várallyay,et al. The role of disulfide bond C191-C220 in trypsin and chymotrypsin. , 1997, Biochemical and biophysical research communications.
[33] W. Rutter,et al. Role of the S' subsites in serine protease catalysis. Active-site mapping of rat chymotrypsin, rat trypsin, alpha-lytic protease, and cercarial protease from Schistosoma mansoni. , 1994, Biochemistry.
[34] Ivet Bahar,et al. Functional motions of influenza virus hemagglutinin: a structure-based analytical approach. , 2002, Biophysical journal.
[35] R. Huber,et al. Structure of the complex formed by bovine trypsin and bovine pancreatic trypsin inhibitor. Crystal structure determination and stereochemistry of the contact region. , 1973, Journal of molecular biology.
[36] David J. Osguthorpe,et al. Low Frequency Motion in Proteins Comparison of Normal Mode and Molecular Dynamics of Streptomyces Griseus Protease A , 1999 .
[37] W. Rutter,et al. Structural origins of substrate discrimination in trypsin and chymotrypsin. , 1995, Biochemistry.
[38] Ozlem Keskin,et al. Relating molecular flexibility to function: a case study of tubulin. , 2002, Biophysical journal.
[39] Ivet Bahar,et al. Dynamics of proteins predicted by molecular dynamics simulations and analytical approaches: Application to α‐amylase inhibitor , 2000, Proteins.
[40] Tsou Cl. The role of active site flexibility in enzyme catalysis. , 1998 .
[41] M. L. Bender,et al. Kinetic Evidence for the Formation of Acyl-Enzyme Intermediates in the -Chymotrypsin-Catalyzed Hydrolyses of Specific Substrates , 1964 .
[42] S. Narayana,et al. Catalytic role of a surface loop of the complement serine protease factor D. , 1995, Journal of Immunology.
[43] B. Hartley,et al. The reaction of p-nitrophenyl esters with chymotrypsin and insulin. , 1954, The Biochemical journal.
[44] A. Maritan,et al. Accurate and efficient description of protein vibrational dynamics: Comparing molecular dynamics and Gaussian models , 2004, Proteins.
[45] Z. Zhao,et al. Relation between the flexibility of the WPD loop and the activity of the catalytic domain of protein tyrosine phosphatase SHP‐1 , 2001, Journal of cellular biochemistry.
[46] R D Appel,et al. A new generation of information retrieval tools for biologists: the example of the ExPASy WWW server. , 1994, Trends in biochemical sciences.
[47] P. Flory,et al. Statistical thermodynamics of random networks , 1976, Proceedings of the Royal Society of London. A. Mathematical and Physical Sciences.
[48] T. Szabó,et al. Specificity of trypsin and alpha-chymotrypsin towards neutral substrates. , 1976, Acta biochimica et biophysica; Academiae Scientiarum Hungaricae.
[49] R L Jernigan,et al. Collective motions in HIV-1 reverse transcriptase: examination of flexibility and enzyme function. , 1999, Journal of molecular biology.
[50] M. Billeter,et al. MOLMOL: a program for display and analysis of macromolecular structures. , 1996, Journal of molecular graphics.
[51] Ned S Wingreen,et al. Flexibility of alpha-helices: results of a statistical analysis of database protein structures. , 2002, Journal of molecular biology.
[52] J. Thompson,et al. The CLUSTAL_X windows interface: flexible strategies for multiple sequence alignment aided by quality analysis tools. , 1997, Nucleic acids research.
[53] Dror Tobi,et al. Allosteric changes in protein structure computed by a simple mechanical model: hemoglobin T<-->R2 transition. , 2003, Journal of molecular biology.
[54] H A Scheraga,et al. The role of the insertion loop around tryptophan 148 in tthe activity of thrombin. , 1996, Biochemistry.
[55] R. Jernigan,et al. Residue-residue potentials with a favorable contact pair term and an unfavorable high packing density term, for simulation and threading. , 1996, Journal of molecular biology.
[56] H. Neurath,et al. The phylogeny of trypsin-related serine proteases and their zymogens. New methods for the investigation of distant evolutionary relationships. , 1975, Journal of molecular biology.
[57] W. Rutter,et al. Converting trypsin to chymotrypsin: residue 172 is a substrate specificity determinant. , 1994, Biochemistry.
[58] F. Bushman,et al. The mobility of an HIV-1 integrase active site loop is correlated with catalytic activity. , 1999, Biochemistry.
[59] X-ray crystallographic study of boronic acid adducts with subtilisin BPN' (Novo). A model for the catalytic transition state. , 1975, The Journal of biological chemistry.
[60] L. Hedstrom. Serine protease mechanism and specificity. , 2002, Chemical reviews.
[61] R. Jernigan,et al. Global ribosome motions revealed with elastic network model. , 2004, Journal of structural biology.
[62] R. Jernigan,et al. Identification of kinetically hot residues in proteins , 1998, Protein science : a publication of the Protein Society.
[63] Robert L. Jernigan,et al. Relating structure to function through the dominant slow modes of motion of DNA topoisomerase II , 1999 .
[64] L. Hedstrom,et al. Trypsin: a case study in the structural determinants of enzyme specificity. , 1996, Biological chemistry.
[65] I. Bahar,et al. Gaussian Dynamics of Folded Proteins , 1997 .
[66] Y. Yuan,et al. Conformational flexibility of a ubiquitin conjugation enzyme (E2). , 1999, Biochemistry.
[67] H. Falk,et al. Structure determination of the biliverdin apomyoglobin complex: crystal structure analysis of two crystal forms at 1.4 and 1.5 A resolution. , 1995, Journal of molecular biology.
[68] R. Jernigan,et al. Proteins with similar architecture exhibit similar large-scale dynamic behavior. , 2000, Biophysical journal.
[69] W. Rutter,et al. Converting trypsin to chymotrypsin: the role of surface loops. , 1992, Science.
[70] I. Bahar,et al. Structure‐based analysis of protein dynamics: Comparison of theoretical results for hen lysozyme with X‐ray diffraction and NMR relaxation data , 1999, Proteins.
[71] Thomas A. Steitz,et al. Structure of crystalline α-chymotrypsin: III. Crystallographic studies of substrates and inhibitors bound to the active site of α-chymotrypsin , 1969 .
[72] A. Hengge,et al. CONCERTED OR STEPWISE MECHANISMS FOR ACYL TRANSFER REACTIONS OF P-NITROPHENYL ACETATE ? TRANSITION STATE STRUCTURES FROM ISOTOPE EFFECTS , 1994 .