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电荷态对机械互锁[5]轮烷平衡和动力学性质的影响:分子动力学研究。

Effect of Charge State on the Equilibrium and Kinetic Properties of Mechanically Interlocked [5]Rotaxane: A Molecular Dynamics Study.

机构信息

UNAM-Institute of Materials Science and Nanotechnology, Bilkent University, Ankara06800, Turkey.

Department of Chemistry, Bilkent University, Ankara06800, Turkey.

出版信息

J Phys Chem B. 2023 Feb 9;127(5):1254-1263. doi: 10.1021/acs.jpcb.2c07645. Epub 2023 Jan 30.

Abstract

Rotaxanes can exhibit stimuli-responsive behavior by allowing positional fluctuations of their rota groups in response to physiochemical conditions such as the changes in solution pH. However, ionic strength of the solution also affects the molecular conformation by altering the charge state of the entire molecule, coupling the stimuli-responsiveness of rotaxanes with their conformation. A molecular-scale investigation on a model system can allow the decoupling and identification of various effects and can greatly benefit applications of such molecular switches. By using atomistic molecular dynamics simulations, we study equilibrium and kinetics properties of various charge states of the [5]rotaxane, which is a supramolecular moiety with four rotaxanes bonded to a porphyrin core. We model various physiochemical charge states, each of which can be realized at various solution pH levels as well as several exotic charge distributions. By analyzing molecular configurations, hydrogen bonding, and energetics of single molecules in salt-free water and its polyrotaxanated network at the interface of water and chloroform, we demonstrate that charge-neutral and negatively charged molecules often tend to collapse in a way that they can expose their porphyrin core. Contrarily, positively charged moieties tend to take more extended molecular configurations blocking the core. Further, sudden changes in the charge states emulating the pH alterations in solution conditions lead to rapid, sub-10 ns level, changes in the molecular conformation of [5]rotaxane via shuttling motion of CB6 rings along axles. Finally, simulations of 2D [5]rotaxane network structures support our previous findings on a few nanometer-thick film formation at oil-water interfaces. Overall, our results suggest that rotaxane-based structures can exhibit a rich spectrum of molecular configurations and kinetics depending on the ionic strength of the solution.

摘要

轮烷可以通过允许其旋转基团在生理化学条件(例如溶液 pH 值的变化)下发生位置波动来表现出对刺激的响应行为。然而,溶液的离子强度也会通过改变整个分子的电荷状态来影响分子构象,从而将轮烷的刺激响应与构象耦合起来。对模型系统进行分子尺度的研究可以使各种效应解耦和识别,并且可以极大地有益于此类分子开关的应用。通过使用原子分子动力学模拟,我们研究了[5]轮烷的各种电荷状态的平衡和动力学性质,[5]轮烷是一种具有四个轮烷键合到卟啉核心的超分子部分。我们模拟了各种生理化学电荷状态,每种电荷状态都可以在不同的溶液 pH 值以及几种奇特的电荷分布下实现。通过分析分子构型、氢键和单分子的能量,我们在盐自由水和水与氯仿界面的多轮烷网络中,证明了中性和带负电荷的分子通常倾向于以一种可以暴露其卟啉核心的方式坍缩。相反,带正电荷的部分往往采取更扩展的分子构象来阻挡核心。此外,模拟溶液条件下 pH 值的突然变化会导致[5]轮烷的分子构象迅速发生变化,变化时间在 10ns 以下,这是通过 CB6 环沿着轴的穿梭运动实现的。最后,对 2D [5]轮烷网络结构的模拟支持了我们之前在油水界面形成几纳米厚薄膜的发现。总体而言,我们的结果表明,基于轮烷的结构可以根据溶液的离子强度表现出丰富的分子构象和动力学谱。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1ad5/9923746/b295f1272c07/jp2c07645_0001.jpg

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