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水通道-选择性水簇渗透的自适应途径。

Hydroxy Channels-Adaptive Pathways for Selective Water Cluster Permeation.

机构信息

Lehn Institute of Functional Materials, School of Chemistry, Sun Yat-Sen University, Guangzhou 510275, People's Republic of China.

Institut Europeen des Membranes, Adaptive Supramolecular Nanosystems Group, University of Montpellier, ENSCM-CNRS, UMR5635, Place E. Bataillon CC047, 34095 Montpellier, France.

出版信息

J Am Chem Soc. 2021 Mar 24;143(11):4224-4233. doi: 10.1021/jacs.0c11952. Epub 2021 Feb 26.

DOI:10.1021/jacs.0c11952
PMID:33635056
Abstract

Artificial water channels (AWCs) are known to selectively transport water, with ion exclusion. Similarly to natural porins, AWCs encapsulate water wires or clusters, offering continuous and iterative H-bonding that plays a vital role in their stabilization. Herein, we report octyl-ureido-polyol AWCs capable of self-assembly into hydrophilic hydroxy channels. Variants of ethanol, propanediol, and trimethanol are used as head groups to modulate the water transport permeabilities, with rejection of ions. The hydroxy channels achieve a single-channel permeability of 2.33 × 10 water molecules per second, which is within the same order of magnitude as the transport rates for aquaporins. Depending on their concentration in the membrane, adaptive channels are observed in the membrane. Over increased concentrations, a significant shift occurs, initiating unexpected higher water permeation. Molecular simulations probe that spongelike or cylindrical aggregates can form to generate transient cluster water pathways through the bilayer. Altogether, the adaptive self-assembly is a key feature influencing channel efficiency. The adaptive channels described here may be considered an important milestone contributing to the systematic discovery of artificial water channels for water desalination.

摘要

人工水通道(AWCs)以选择性传输水和排斥离子而闻名。与天然孔蛋白类似,AWCs 封装水线或簇,提供连续的和迭代的氢键,在其稳定化中起着至关重要的作用。在此,我们报告了能够自组装成亲水性羟基通道的辛基-脲基-多元醇 AWCs。使用乙醇、丙二醇和三甲醇的变体作为头基来调节水传输渗透率,并排斥离子。羟基通道实现了 2.33×10 个水分子/秒的单通道渗透率,与水通道蛋白的传输速率处于同一数量级。根据它们在膜中的浓度,观察到膜中存在适应性通道。随着浓度的增加,会发生显著的转变,从而引发意想不到的更高的水渗透。分子模拟探测到可以形成海绵状或圆柱形聚集体,以在双层中生成瞬态簇状水通道。总之,自适应自组装是影响通道效率的关键特征。这里描述的自适应通道可以被认为是为海水淡化系统发现人工水通道的一个重要里程碑。

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