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无物能增强亲合力:疏水性配体结合到糜蛋白酶 S' 口袋的虚拟空位。

How Nothing Boosts Affinity: Hydrophobic Ligand Binding to the Virtually Vacated S' Pocket of Thermolysin.

机构信息

Department of Pharmaceutical Chemistry, University of Marburg , Marbacher Weg 6, 35032 Marburg, Germany.

出版信息

J Am Chem Soc. 2017 Aug 2;139(30):10419-10431. doi: 10.1021/jacs.7b05028. Epub 2017 Jul 24.

DOI:10.1021/jacs.7b05028
PMID:28696673
Abstract

We investigated the hydration state of the deep, well-accessible hydrophobic S' specificity pocket of the metalloprotease thermolysin with purposefully designed ligands using high-resolution crystallography and isothermal titration calorimetry. The S' pocket is known to recognize selectively a very stringent set of aliphatic side chains such as valine, leucine, and isoleucine of putative substrates. We engineered a weak-binding ligand covering the active site of the protease without addressing the S' pocket, thus transforming it into an enclosed cavity. Its sustained accessibility could be proved by accommodating noble gas atoms into the pocket in the crystalline state. The topology and electron content of the enclosed pocket with a volume of 141 Å were analyzed using an experimental MAD-phased electron density map that was calibrated to an absolute electron number scale, enabling access to the total electron content within the cavity. Our analysis indicates that the S' pocket is virtually vacated, thus free of any water molecules. The thermodynamic signature of the reduction of the void within the pocket by growing aliphatic P' substituents (H, Me, iPr, iBu) reveals a dramatic, enthalpy-dominated gain in free energy of binding resulting in a factor of 41 000 in K for the H-to-iBu transformation. Substituents placing polar decoy groups into the pocket to capture putatively present water molecules could not collect any evidence for a bound solvent molecule.

摘要

我们使用高分辨率晶体学和等温滴定量热法,研究了具有特定设计配体的金属蛋白酶 thermolysin 中深度、易于接近的疏水 S'特异性口袋的水合状态。众所周知,S'口袋选择性地识别非常严格的一组脂肪族侧链,如假定底物的缬氨酸、亮氨酸和异亮氨酸。我们设计了一种弱结合配体,覆盖蛋白酶的活性部位而不涉及 S'口袋,从而将其转化为封闭腔。通过在晶体状态下将稀有气体原子容纳在口袋中,可以证明其持续的可及性。使用经过校准至绝对电子数刻度的实验 MAD 相电子密度图分析封闭口袋的拓扑结构和电子含量,使我们能够获得腔内的总电子含量。我们的分析表明,S'口袋几乎是空的,因此没有任何水分子。通过在口袋中生长脂肪族 P'取代基(H、Me、iPr、iBu)来减小口袋中空隙的热力学特征揭示了结合自由能的显著、焓主导的增加,导致 H 到 iBu 转变的 K 值增加了 41000 倍。将极性诱饵基团放入口袋中以捕获假定存在的水分子的取代基不能收集到任何结合溶剂分子的证据。

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