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利用力谱学和分子动力学模拟揭示分子水平上的疏水相互作用。

Unraveling Hydrophobic Interactions at the Molecular Scale Using Force Spectroscopy and Molecular Dynamics Simulations.

机构信息

Department for Interface Chemistry and Surface Engineering, Max-Planck-Institut für Eisenforschung GmbH , D-40237 Düsseldorf, Germany.

Department of Chemical Engineering, University of California Santa Barbara , Santa Barbara, California 93106-5080, United States.

出版信息

ACS Nano. 2017 Mar 28;11(3):2586-2597. doi: 10.1021/acsnano.6b06360. Epub 2017 Mar 13.

Abstract

Interactions between hydrophobic moieties steer ubiquitous processes in aqueous media, including the self-organization of biologic matter. Recent decades have seen tremendous progress in understanding these for macroscopic hydrophobic interfaces. Yet, it is still a challenge to experimentally measure hydrophobic interactions (HIs) at the single-molecule scale and thus to compare with theory. Here, we present a combined experimental-simulation approach to directly measure and quantify the sequence dependence and additivity of HIs in peptide systems at the single-molecule scale. We combine dynamic single-molecule force spectroscopy on model peptides with fully atomistic, both equilibrium and nonequilibrium, molecular dynamics (MD) simulations of the same systems. Specifically, we mutate a flexible (GS) peptide scaffold with increasing numbers of hydrophobic leucine monomers and measure the peptides' desorption from hydrophobic self-assembled monolayer surfaces. Based on the analysis of nonequilibrium work-trajectories, we measure an interaction free energy that scales linearly with 3.0-3.4 kT per leucine. In good agreement, simulations indicate a similar trend with 2.1 kT per leucine, while also providing a detailed molecular view into HIs. This approach potentially provides a roadmap for directly extracting qualitative and quantitative single-molecule interactions at solid/liquid interfaces in a wide range of fields, including interactions at biointerfaces and adhesive interactions in industrial applications.

摘要

疏水分子之间的相互作用控制着水介质中的普遍过程,包括生物物质的自组织。近几十年来,人们在理解宏观疏水界面的这些相互作用方面取得了巨大进展。然而,在单分子尺度上实验测量疏水相互作用(HI)并与理论进行比较仍然是一个挑战。在这里,我们提出了一种组合的实验-模拟方法,以直接测量和量化在单分子尺度上肽系统中的序列依赖性和加和性。我们将模型肽的动态单分子力谱与相同系统的完全原子的平衡和非平衡分子动力学(MD)模拟相结合。具体来说,我们用越来越多的疏水性亮氨酸单体突变柔性(GS)肽支架,并测量肽从疏水性自组装单层表面的解吸。基于对非平衡工作轨迹的分析,我们测量了与每个亮氨酸 3.0-3.4 kT 线性比例的相互作用自由能。模拟结果与每个亮氨酸 2.1 kT 的相似趋势非常吻合,同时还提供了 HI 的详细分子视图。这种方法可能为直接提取广泛领域(包括生物界面相互作用和工业应用中的粘附相互作用)中固/液界面的定性和定量单分子相互作用提供了一条途径。

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