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人工跨膜通道中的定向手性水线

Oriented chiral water wires in artificial transmembrane channels.

作者信息

Kocsis Istvan, Sorci Mirco, Vanselous Heather, Murail Samuel, Sanders Stephanie E, Licsandru Erol, Legrand Yves-Marie, van der Lee Arie, Baaden Marc, Petersen Poul B, Belfort Georges, Barboiu Mihail

机构信息

Institut Europeen des Membranes, Adaptive Supramolecular Nanosystems Group, Université de Montpellier, ENSCM, CNRS, Place Eugene Bataillon CC047, Montpellier F-34095, France.

Howard P. Isermann Department of Chemical and Biological Engineering and Center for Biotechnology and Interdisciplinary Studies, Rensselaer Polytechnic Institute, 110 Eighth Street, Troy, NY 12180-3590, USA.

出版信息

Sci Adv. 2018 Mar 23;4(3):eaao5603. doi: 10.1126/sciadv.aao5603. eCollection 2018 Mar.

Abstract

Aquaporins (AQPs) feature highly selective water transport through cell membranes, where the dipolar orientation of structured water wires spanning the AQP pore is of considerable importance for the selective translocation of water over ions. We recently discovered that water permeability through artificial water channels formed by stacked imidazole I-quartet superstructures increases when the channel water molecules are highly organized. Correlating water structure with molecular transport is essential for understanding the underlying mechanisms of (fast) water translocation and channel selectivity. Chirality adds another factor enabling unique dipolar oriented water structures. We show that water molecules exhibit a dipolar oriented wire structure within chiral I-quartet water channels both in the solid state and embedded in supported lipid bilayer membranes (SLBs). X-ray single-crystal structures show that crystallographic water wires exhibit dipolar orientation, which is unique for chiral I-quartets. The integration of I-quartets into SLBs was monitored with a quartz crystal microbalance with dissipation, quantizing the amount of channel water molecules. Nonlinear sum-frequency generation vibrational spectroscopy demonstrates the first experimental observation of dipolar oriented water structures within artificial water channels inserted in bilayer membranes. Confirmation of the ordered confined water is obtained via molecular simulations, which provide quantitative measures of hydrogen bond strength, connectivity, and the stability of their dipolar alignment in a membrane environment. Together, uncovering the interplay between the dipolar aligned water structure and water transport through the self-assembled I-quartets is critical to understanding the behavior of natural membrane channels and will accelerate the systematic discovery for developing artificial water channels for water desalting.

摘要

水通道蛋白(AQPs)的特点是能够高度选择性地通过细胞膜运输水,其中跨越水通道蛋白孔的结构化水线的偶极取向对于水相对于离子的选择性转运至关重要。我们最近发现,当通道水分子高度有序时,由堆叠的咪唑I-四重奏超结构形成的人工水通道的水渗透性会增加。将水结构与分子运输相关联对于理解(快速)水转运和通道选择性的潜在机制至关重要。手性增加了另一个因素,使得能够形成独特的偶极取向水结构。我们表明,水分子在固态以及嵌入支持脂质双层膜(SLB)中的手性I-四重奏水通道内呈现出偶极取向的线结构。X射线单晶结构表明,晶体学水线呈现出偶极取向,这对手性I-四重奏来说是独特的。通过带有耗散的石英晶体微天平监测I-四重奏整合到SLB中的情况,从而量化通道水分子的数量。非线性和频产生振动光谱首次实验观察到插入双层膜中的人工水通道内的偶极取向水结构。通过分子模拟获得了有序受限水的证实,分子模拟提供了氢键强度、连通性及其在膜环境中偶极排列稳定性的定量测量。总之,揭示偶极排列的水结构与通过自组装I-四重奏的水运输之间的相互作用对于理解天然膜通道的行为至关重要,并将加速开发用于水脱盐的人工水通道的系统发现。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/787e/5866074/6ae936dbc376/aao5603-F1.jpg

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