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溶质跨 UT-B 和 AQP1 渗透的平均力势计算的潜力:分子动力学与 3D-RISM 的比较。

Potential of Mean Force Calculations of Solute Permeation Across UT-B and AQP1: A Comparison between Molecular Dynamics and 3D-RISM.

机构信息

Institute for Microbiology and Genetics, Georg-August-Universität , 37077 Göttingen, Germany.

出版信息

J Phys Chem B. 2017 Feb 23;121(7):1506-1519. doi: 10.1021/acs.jpcb.6b11279. Epub 2017 Feb 13.

Abstract

Membrane channels facilitate the efficient and selective flux of various solutes across biological membranes. A common approach to investigate the selectivity of a channel has been the calculation of potentials of mean force (PMFs) for solute permeation across the pore. PMFs have been frequently computed from molecular dynamics (MD) simulations, yet the three-dimensional reference interaction site model (3D-RISM) has been suggested as a computationally efficient alternative to MD. Whether the two methods yield comparable PMFs for solute permeation has remained unclear. In this study, we calculated potentials of mean force for water, ammonia, urea, molecular oxygen, and methanol across the urea transporter B (UT-B) and aquaporin-1 (AQP1), using 3D-RISM, as well as using MD simulations and umbrella sampling. To allow direct comparison between the PMFs from 3D-RISM and MD, we ensure that all PMFs refer to a well-defined reference area in the bulk or, equivalently, to a well-defined density of channels in the membrane. For PMFs of water permeation, we found reasonable agreement between the two methods, with differences of ≲3 kJ mol. In contrast, we found stark discrepancies for the PMFs for all other solutes. Additional calculations confirm that discrepancies between MD and 3D-RISM are not explained by the choice for the closure relation, the definition the reaction coordinate (center of mass-based versus atomic site-based), details of the molecule force field, or fluctuations of the protein. Comparison of the PMFs suggests that 3D-RISM may underestimate effects from hydrophobic solute-channel interactions, thereby, for instance, missing the urea binding sites in UT-B. Furthermore, we speculate that the orientational averages inherent to 3D-RISM might lead to discrepancies in the narrow channel lumen. These findings suggest that current 3D-RISM solvers provide reasonable estimates for the PMF for water permeation, but that they are not suitable to study the selectivity of membrane channels with respect to uncharged nonwater solutes.

摘要

膜通道促进各种溶质在生物膜上的有效和选择性通量。研究通道选择性的一种常见方法是计算溶质通过孔道的平均力势(PMF)。PMF 经常通过分子动力学(MD)模拟计算,然而,三维参考相互作用位点模型(3D-RISM)已被提议作为 MD 的计算有效替代方法。这两种方法是否为溶质渗透产生可比的 PMF 仍然不清楚。在这项研究中,我们使用 3D-RISM 以及 MD 模拟和伞状采样,计算了水、氨、尿素、分子氧和甲醇通过尿素转运蛋白 B(UT-B)和水通道蛋白-1(AQP1)的平均力势。为了允许 3D-RISM 和 MD 的 PMF 之间进行直接比较,我们确保所有 PMF 都参考了在体相中的定义明确的参考区域,或者等效地,参考膜中的定义明确的通道密度。对于水渗透的 PMF,我们发现两种方法之间存在合理的一致性,差异 ≲3 kJ mol。相比之下,我们发现对于所有其他溶质的 PMF 存在明显的差异。额外的计算证实,MD 和 3D-RISM 之间的差异不能用闭合关系的选择、反应坐标的定义(基于质心与基于原子位点)、分子力场的细节或蛋白质的波动来解释。PMF 的比较表明,3D-RISM 可能低估了疏水溶质-通道相互作用的影响,从而例如在 UT-B 中错过了尿素结合位点。此外,我们推测 3D-RISM 固有的取向平均值可能导致在狭窄的通道腔中存在差异。这些发现表明,当前的 3D-RISM 求解器为水渗透的 PMF 提供了合理的估计,但它们不适合研究带电荷的非水溶质对膜通道选择性。

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