Thermodynamic analysis of binding of p-substituted benzamidines to trypsin.
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[1] W. Conner. A GENERAL EXPLANATION FOR THE COMPENSATION EFFECT - THE RELATIONSHIP BETWEEN DELTA-S+/+ AND ACTIVATION-ENERGY , 1982 .
[2] R. Kini,et al. Targeting of venom phospholipases: the strongly anticoagulant phospholipase A(2) from Naja nigricollis venom binds to coagulation factor Xa to inhibit the prothrombinase complex. , 1999, Archives of biochemistry and biophysics.
[3] R. S. Spolar,et al. Use of liquid hydrocarbon and amide transfer data to estimate contributions to thermodynamic functions of protein folding from the removal of nonpolar and polar surface from water. , 1992, Biochemistry.
[4] Disease,et al. Proteases II. Potential role in health and disease. Proceedings of the second international conference. May 17-20, 1987, Rothenburg, Federal Republic of Germany. , 2012, Advances in experimental medicine and biology.
[5] F. Markwardt,et al. Comparative studies on the inhibition of trypsin, plasmin, and thrombin by derivatives of benzylamine and benzamidine. , 1968, European journal of biochemistry.
[6] K. P. Murphy,et al. Common features of protein unfolding and dissolution of hydrophobic compounds. , 1990, Science.
[7] J. Ha,et al. Role of the hydrophobic effect in stability of site-specific protein-DNA complexes. , 1989, Journal of molecular biology.
[8] R. S. Spolar,et al. Hydrophobic effect in protein folding and other noncovalent processes involving proteins. , 1989, Proceedings of the National Academy of Sciences of the United States of America.
[9] H. Bosshard,et al. Isothermal titration calorimetry and differential scanning calorimetry as complementary tools to investigate the energetics of biomolecular recognition , 1999, Journal of molecular recognition : JMR.
[10] W. Bode,et al. The refined crystal structure of bovine beta-trypsin at 1.8 A resolution. II. Crystallographic refinement, calcium binding site, benzamidine binding site and active site at pH 7.0. , 1975, Journal of molecular biology.
[11] Jonathan W. Essex,et al. Monte Carlo Simulations for Proteins: Binding Affinities for Trypsin−Benzamidine Complexes via Free-Energy Perturbations , 1997 .
[12] A. Parody-Morreale,et al. Measurement of biochemical affinities with a Gill titration calorimeter. , 1997, Analytical biochemistry.
[13] B. Lee,et al. Enthalpy-entropy compensation in the thermodynamics of hydrophobicity. , 1994, Biophysical chemistry.
[14] L. Hansen,et al. Handbook of Proton Ionization Heats and Related Thermodynamic Quantities , 1976 .
[15] D. Rifkin,et al. Proteases and biological control , 1975 .
[16] K. P. Murphy,et al. Dissecting the energetics of a protein-protein interaction: the binding of ovomucoid third domain to elastase. , 1997, Journal of molecular biology.
[17] Otto Exner,et al. The Hammett Equation—the Present Position , 1972 .
[18] R. S. Spolar,et al. Coupling of local folding to site-specific binding of proteins to DNA. , 1994, Science.
[19] K. A. Walsh,et al. [4] Trypsinogens and trypsins of various species , 1970 .
[20] K. Sharp,et al. Hydrophobic Effect, Water Structure, and Heat Capacity Changes , 1997 .
[21] G. Graziano. Hydration thermodynamics of aliphatic alcohols , 1999 .
[22] R. Parrish,et al. Amidino-substituted aromatic heterocycles as probes of the specificity pocket of trypsin-like proteases. , 1979, Archives of biochemistry and biophysics.
[23] J. Ladbury,et al. Biocalorimetry: Applications of Calorimetry in the Biological Sciences , 2005 .
[24] R. Huber,et al. The Geometry of the Reactive Site and of the Peptide Groups in Trypsin, Trypsinogen and its Complexes with Inhibitors , 1983 .
[25] H. F. Fisher,et al. Theoretical aspects of isothermal titration calorimetry. , 1998, Methods in enzymology.
[26] J M Sturtevant,et al. Heat capacity and entropy changes in processes involving proteins. , 1977, Proceedings of the National Academy of Sciences of the United States of America.
[27] E. Shaw,et al. STUDIES ON THE ACTIVE CENTER OF TRYPSIN. THE BINDING OF AMIDINES AND GUANIDINES AS MODELS OF THE SUBSTRATE SIDE CHAIN. , 1965, The Journal of biological chemistry.
[28] Jan B. F. N. Engberts,et al. Hydrophobic Effects. Opinions and Facts , 1993 .
[29] Gerhard Klebe,et al. What Can We Learn from Molecular Recognition in Protein–Ligand Complexes for the Design of New Drugs? , 1996 .
[30] J F Brandts,et al. Rapid measurement of binding constants and heats of binding using a new titration calorimeter. , 1989, Analytical biochemistry.
[31] S. Evans,et al. p-Aminobenzamidine as a fluorescent probe for the active site of serine proteases. , 1982, The Journal of biological chemistry.
[32] R. L. Baldwin,et al. Temperature dependence of the hydrophobic interaction in protein folding. , 1986, Proceedings of the National Academy of Sciences of the United States of America.
[33] Peter D. J. Grootenhuis,et al. Binding affinities and non-bonded interaction energies , 1998 .
[34] W. Linert,et al. The isokinetic relationship , 1989 .
[35] Dudley H. Williams,et al. Application of a generalised enthalpy–entropy relationship to binding co-operativity and weak associations in solution , 1995 .