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细胞色素 c 氧化酶(球形红杆菌)中 Glu286 的微观 pKa 分析:建立一个校准的分子模型。

Microscopic pKa analysis of Glu286 in cytochrome c oxidase (Rhodobacter sphaeroides): toward a calibrated molecular model.

机构信息

Department of Chemistry, University of Wisconsin, 1101 University Avenue, Madison, Wisconsin 53706, USA.

出版信息

Biochemistry. 2009 Mar 24;48(11):2468-85. doi: 10.1021/bi8021284.

Abstract

As stringent tests for the molecular model and computational protocol, microscopic pK(a) calculations are performed for the key residue, Glu286, in cytochrome c oxidase (CcO) using a combined quantum mechanical/molecular mechanical (QM/MM) potential and a thermodynamic integration protocol. The impact of the number of water molecules in the hydrophobic cavity and protonation state of several key residues (e.g., His334, Cu(B)-bound water, and PRD(a3)) on the computed microscopic pK(a) values of Glu286 has been systematically examined. To help evaluate the systematic errors in the QM/MM-based protocol, microscopic pK(a) calculations have also been carried out for sites in a soluble protein (Asp70 in T4 lysozyme) and a better-characterized membrane protein (Asp85 in bacteriorhodopsin). Overall, the results show a significant degree of internal consistency and reproducibility that support the effectiveness of the computational framework. Although the number of water molecules in the hydrophobic cavity does not greatly influence the computed pK(a) of Glu286, the protonation states of several residues, some of which are rather far away, have more significant impacts. Adopting the standard protonation state for all titratable residues leaves a large net charge on the system and a significantly elevated pK(a) for Glu286, highlighting that any attempt to address the energetics of proton transfers in CcO at a microscopic level should carefully select the protonation state of residues, even those not in the immediate neighborhood of the active site. The calculations indirectly argue against the deprotonation of His334 for the proton pumping process, although further studies that explicitly compute its pK(a) are required for a more conclusive statement. Finally, the deprotonated Glu286 is found to be in a stable water-mediated connection with PRD(a3) for at least several nanoseconds when this presumed pumping site is protonated. This does not support the proposed role of Glu286 as a robust gating valve that prevents proton leakage, although a conclusive statement awaits a more elaborate characterization of the Glu286-PRD(a3) connectivity with free energy simulations and a protonated PRD(a3). The large sets of microscopic simulations performed here have provided useful guidance to the establishment of a meaningful molecular model and effective computational protocol for explicitly analyzing the proton transfer kinetics in CcO, which is required for answering key questions regarding the pumping function of this fascinating and complex system.

摘要

作为分子模型和计算方案的严格测试,使用量子力学/分子力学(QM/MM)势能和热力学积分方案,对细胞色素 c 氧化酶(CcO)中的关键残基 Glu286 进行微观 pK(a)计算。系统地研究了疏水性空腔中的水分子数量和几个关键残基(例如 His334、Cu(B)结合水和 PRD(a3))的质子化状态对计算得到的微观 pK(a)值的影响 Glu286。为了帮助评估基于 QM/MM 的方案中的系统误差,还对可溶性蛋白(T4 溶菌酶中的 Asp70)和更好表征的膜蛋白(细菌视紫红质中的 Asp85)中的位点进行了微观 pK(a)计算。总体而言,结果显示出高度的内部一致性和可重复性,支持计算框架的有效性。尽管疏水性空腔中的水分子数量对 Glu286 的计算 pK(a)影响不大,但几个残基的质子化状态,其中一些残基距离较远,影响更大。采用所有可滴定残基的标准质子化状态会使系统带有大量净电荷,并使 Glu286 的 pK(a)显著升高,这表明任何试图在微观水平上解决 CcO 中质子转移的能量学问题都应仔细选择残基的质子化状态,即使是那些不在活性位点附近的残基。这些计算间接反对质子泵过程中 His334 的去质子化,尽管需要进一步的研究来明确计算其 pK(a),以得出更具结论性的声明。最后,当假定的泵送部位质子化时,发现去质子化的 Glu286 与 PRD(a3)通过稳定的水介导连接,至少持续数纳秒。这并不支持 Glu286 作为阻止质子泄漏的坚固闸门的作用,尽管需要更详细地表征 Glu286-PRD(a3)的连通性和质子化的 PRD(a3),才能得出更有说服力的结论。此处进行的大量微观模拟为建立有意义的分子模型和有效的计算方案提供了有用的指导,以明确分析 CcO 中的质子转移动力学,这对于回答有关该迷人而复杂系统的泵送功能的关键问题至关重要。

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