Understanding noncovalent interactions: Ligand binding energy and catalytic efficiency from ligand-induced reductions in motion within receptors and enzymes

被引:435
作者
Williams, DH [1 ]
Stephens, E [1 ]
O'Brien, DP [1 ]
Zhou, M [1 ]
机构
[1] Univ Cambridge, Dept Chem, Cambridge CB2 1EW, England
关键词
enthalpy/entropy compensation; enzyme catalysis; non-covalent interactions; receptors; signal transduction;
D O I
10.1002/anie.200300644
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Noncovalent interactions are sometimes treated as additive and this enables useful average binding energies for common inter-actions in aqueous solution to be derived. However, the additive approach is often not applicable, since noncovalent interactions are often either mutually reinforcing (positively cooperative) or mutually weakening (negatively cooperative). Ligand binding energy is derived (positively cooperative binding) when a ligand reduces motion within a receptor. Similarly, transition-state binding energy is derived in enzyme-catalyzed reactions when the substrate transition state reduces the motions within an enzyme. Ligands and substrates can in this way improve their affinities for these proteins. The further organization occurs with a benefit in bonding (enthalpy) and a limitation in dynamics (cost in entropy), but does not demand the making of new noncovalent interactions, simply the strengthening of existing ones. Negative cooperativity induces converse effects: less efficient packing, a cost in enthalpy, and a benefit in entropy.
引用
收藏
页码:6596 / 6616
页数:21
相关论文
共 108 条
[81]   ENTHALPICALLY DRIVEN CYCLOPHANE ARENE INCLUSION COMPLEXATION - SOLVENT-DEPENDENT CALORIMETRIC STUDIES [J].
SMITHRUD, DB ;
WYMAN, TB ;
DIEDERICH, F .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1991, 113 (14) :5420-5426
[82]   Temperature effects on the catalytic efficiency, rate enhancement, and transition state affinity of cytidine deaminase, and the thermodynamic consequences for catalysis of removing a substrate "anchor" [J].
Snider, MJ ;
Gaunitz, S ;
Ridgway, C ;
Short, SA ;
Wolfenden, R .
BIOCHEMISTRY, 2000, 39 (32) :9746-9753
[83]   NMR relaxation studies of the role of conformational entropy in protein stability and ligand binding [J].
Stone, MJ .
ACCOUNTS OF CHEMICAL RESEARCH, 2001, 34 (05) :379-388
[84]   HEAT-CAPACITY AND ENTROPY CHANGES IN PROCESSES INVOLVING PROTEINS [J].
STURTEVANT, JM .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1977, 74 (06) :2236-2240
[85]   A general rule for the relationship between hydrophobic effect and conformational stability of a protein: Stability and structure of a series of hydrophobic mutants of human lysozyme [J].
Takano, K ;
Yamagata, Y ;
Yutani, K .
JOURNAL OF MOLECULAR BIOLOGY, 1998, 280 (04) :749-761
[86]  
Tanford C, 1980, HYDROPHOBIC EFFECT F
[87]   Free energy of burying hydrophobic residues in the interface between protein subunits [J].
Vallone, B ;
Miele, AE ;
Vecchini, P ;
Chiancone, E ;
Brunori, M .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1998, 95 (11) :6103-6107
[88]   HYDROGEN-BOND LENGTH AND H-1-NMR CHEMICAL-SHIFTS IN PROTEINS [J].
WAGNER, G ;
PARDI, A ;
WUTHRICH, K .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1983, 105 (18) :5948-5949
[89]   Immucillin-H binding to purine nucleoside phosphorylase reduces dynamic solvent exchange [J].
Wang, F ;
Miles, RW ;
Kicska, G ;
Nieves, E ;
Schramm, VL ;
Angeletti, RH .
PROTEIN SCIENCE, 2000, 9 (09) :1660-1668
[90]   A transition-state analogue reduces protein dynamics in hypoxanthine-guanine phosphoribosyltransferase [J].
Wang, F ;
Shi, WX ;
Nieves, E ;
Angeletti, RH ;
Schramm, VL ;
Grubmeyer, C .
BIOCHEMISTRY, 2001, 40 (27) :8043-8054