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水网络有助于蛋白质-配体结合中的焓/熵补偿。

Water networks contribute to enthalpy/entropy compensation in protein-ligand binding.

机构信息

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

出版信息

J Am Chem Soc. 2013 Oct 16;135(41):15579-84. doi: 10.1021/ja4075776. Epub 2013 Oct 3.

Abstract

The mechanism (or mechanisms) of enthalpy-entropy (H/S) compensation in protein-ligand binding remains controversial, and there are still no predictive models (theoretical or experimental) in which hypotheses of ligand binding can be readily tested. Here we describe a particularly well-defined system of protein and ligands--human carbonic anhydrase (HCA) and a series of benzothiazole sulfonamide ligands with different patterns of fluorination--that we use to define enthalpy/entropy (H/S) compensation in this system thermodynamically and structurally. The binding affinities of these ligands (with the exception of one ligand, in which the deviation is understood) to HCA are, despite differences in fluorination pattern, indistinguishable; they nonetheless reflect significant and compensating changes in enthalpy and entropy of binding. Analysis reveals that differences in the structure and thermodynamic properties of the waters surrounding the bound ligands are an important contributor to the observed H/S compensation. These results support the hypothesis that the molecules of water filling the active site of a protein, and surrounding the ligand, are as important as the contact interactions between the protein and the ligand for biomolecular recognition, and in determining the thermodynamics of binding.

摘要

蛋白质-配体结合的焓熵(H/S)补偿的机制(或机制)仍然存在争议,并且仍然没有预测模型(理论或实验)可以方便地检验配体结合的假设。在这里,我们描述了一个特别明确的蛋白质和配体系统 - 人碳酸酐酶(HCA)和一系列具有不同氟化模式的苯并噻唑磺酰胺配体 - 我们使用该系统从热力学和结构上定义该系统中的焓/熵(H/S)补偿。尽管这些配体的氟化模式不同,但它们与 HCA 的结合亲和力(除了一个配体,其中偏差可以理解)是不可区分的;尽管如此,它们反映了结合焓和熵的显著且补偿性变化。分析表明,围绕结合配体的水分子的结构和热力学性质的差异是观察到的 H/S 补偿的重要贡献者。这些结果支持这样的假设,即填充蛋白质活性位点并围绕配体的水分子与蛋白质和配体之间的接触相互作用一样重要,对于生物分子识别和确定结合的热力学都是重要的。

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