NONPOLAR INTERACTIONS OF THROMBIN AND ITS INHIBITORS AT THE FIBRINOGEN RECOGNITION EXOSITE - THERMODYNAMIC ANALYSIS

Citation
Y. Cheng et al., NONPOLAR INTERACTIONS OF THROMBIN AND ITS INHIBITORS AT THE FIBRINOGEN RECOGNITION EXOSITE - THERMODYNAMIC ANALYSIS, Biochemistry, 35(40), 1996, pp. 13021-13029
Citations number
46
Categorie Soggetti
Biology
Journal title
ISSN journal
00062960
Volume
35
Issue
40
Year of publication
1996
Pages
13021 - 13029
Database
ISI
SICI code
0006-2960(1996)35:40<13021:NIOTAI>2.0.ZU;2-D
Abstract
Nonpolar interactions play a major role in the association of the fibr inogen recognition exosite of thrombin with the C-terminal fragment (5 5-65), Asp-Phe-Glu-Glu-Ile-Pro-Glu-Glu-Tyr-Leu-Gln, of hirudin, which is a naturally occurring thrombin inhibitor. The thermodynamic details (free energy, enthalpy, entropy, and heat capacity) of the molecular recognition are studied by using five analogs of a synthetic bivalent thrombin inhibitor (P552), tert-butylbenzensulfonyl-Arg-(D-pipecoli ac id)-(12-aminododecanoic acid)-(gamma-aminobutyric acid)-hirudin(55-65) . The residue of phe(H56), Ile(H59), Pro(H60), Tyr(H63), or Leu(H64) i n hirudin(55-65) segment is substituted by Gly in each analog in order to elucidate the contributions of these nonpolar side chains. The res ults show that the interactions of these nonpolar side chains with thr ombin are enthalpy-driven, except for the contribution of the phe(H56) Side chain which is entropy-driven. Interestingly, molecular modeling predicts a large conformational change due to the Gly substitution of Phe(H56). I, analyzing the correlation among the thermodynamic and st ructural properties of the nonpolar interaction, a good correlation is observed between the binding free energy and the hydrophobicity of th e molecular surface; i.e., tighter binding is observed as more nonpola r atoms are buried and more polar atoms are exposed upon molecular ass ociation.