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乙二醇、甘氨酸和肌氨酸链与牛碳酸酐酶II相互作用的反常热力学基础:焓/熵补偿的意外表现

The paradoxical thermodynamic basis for the interaction of ethylene glycol, glycine, and sarcosine chains with bovine carbonic anhydrase II: an unexpected manifestation of enthalpy/entropy compensation.

作者信息

Krishnamurthy Vijay M, Bohall Brooks R, Semetey Vincent, Whitesides George M

机构信息

Department of Chemistry and Chemical Biology, Harvard University, 12 Oxford Street, Cambridge, Massachusetts 02138, USA.

出版信息

J Am Chem Soc. 2006 May 3;128(17):5802-12. doi: 10.1021/ja060070r.

Abstract

This paper describes a systematic study of the thermodynamics of association of bovine carbonic anhydrase II (BCA) and para-substituted benzenesulfonamides with chains of oligoglycine, oligosarcosine, and oligoethylene glycol of lengths of one to five residues. For all three of these series of ligands, the enthalpy of binding became less favorable, and the entropy less unfavorable, as the chain length of the ligands increased. The dependence on chain length of the enthalpy was almost perfectly compensated by that of the entropy; this compensation resulted in dissociation constants that were independent of chain length for the three series of ligands. Changes in heat capacity were independent of chain length for the three series and revealed that the amount of molecular surface area buried upon protein-ligand complexation did not increase with increasing chain length. Taken together, these data refute a model in which the chains of the ligands interact hydrophobically with the surface of BCA. To explain the data, a model is proposed based on decreasing "tightness" of the protein-ligand interface as the chain length of the ligand increases. This decreasing tightness, as the chain length increases, is reflected in a less favorable enthalpy (due to fewer van der Waals contacts) and a less unfavorable entropy (due to greater mobility of the chain) of binding for ligands with long chains than for those with short chains. Thus, this study demonstrates a surprising example of enthalpy/entropy compensation in a well-defined system. Understanding this compensation is integral to the rational design of high-affinity ligands for proteins.

摘要

本文描述了一项关于牛碳酸酐酶II(BCA)与对取代苯磺酰胺和长度为1至5个残基的寡甘氨酸、寡肌氨酸和寡乙二醇链缔合的热力学系统研究。对于这三个系列的配体,随着配体链长增加,结合焓变得更不利,而熵变得不那么不利。焓对链长的依赖性几乎完全被熵的依赖性所补偿;这种补偿导致三个系列配体的解离常数与链长无关。三个系列的热容变化与链长无关,这表明蛋白质 - 配体络合时埋藏的分子表面积不会随着链长增加而增加。综合来看,这些数据反驳了配体链与BCA表面发生疏水相互作用的模型。为了解释这些数据,提出了一个基于随着配体链长增加蛋白质 - 配体界面“紧密性”降低的模型。随着链长增加,这种紧密性降低表现为长链配体结合时的焓更不利(由于范德华接触减少)和熵不那么不利(由于链的流动性更大),而短链配体则不然。因此,本研究展示了一个在明确系统中焓/熵补偿的惊人例子。理解这种补偿对于合理设计蛋白质的高亲和力配体至关重要。

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