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首页> 外文期刊>Langmuir: The ACS Journal of Surfaces and Colloids >Dipeptides Embedded in a Lipid Bilayer Membrane as Synthetic Water Channels
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Dipeptides Embedded in a Lipid Bilayer Membrane as Synthetic Water Channels

机译:嵌入脂质双层膜中的二肽作为合成水通道

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摘要

Water channels are essential to life sciences and many biological processes. We report a molecular simulation study on dipeptides embedded in a lipid (dipalmitoylphosphatidylcholine) membrane as synthetic water channels. Five dipeptides are examined including FF, FL, LF, and LL (with hydrophilic channels) and AV (with hydrophobic channel). It is found that AV is unstable in the lipid membrane due to incompatible interaction between the hydrophilic external surface of AV and the hydrophobic lipid tails; whereas FF, FL, LF, and LL with hydrophobic external surface exhibit good stability. In the four hydrophilic channels FF, FL, LF, and LL, water chains are formed; the number of chains ranges from multiple, two to one depending on channel diameter; moreover, water undergoes single-file diffusion and the mobility is enhanced with increasing channel diameter. The permeation rate of water in the FF channel is 9.20/ns, about three times that in aquaporin; however, the rate in FL, LF, and LL is much slower. Intriguingly, the rate can be tuned by a lateral stress/strain on the lipid membrane. The simulation study provides fundamental understanding on the stability of dipeptide channels embedded in a lipid membrane, quantitatively characterizing water structure, dynamics, and permeation in the channels. These microscopic insights are useful for the development of new water channels.
机译:水渠道对生命科学和许多生物过程至关重要。我们报告了嵌入脂质(二硫代酰磷脂酰胆碱)膜中的二肽作为合成水通道的分子模拟研究。检查包括FF,FL,LF和LL(用亲水通道)和AV(带疏水通道)的五种二肽。结果发现,由于AV和疏水性脂尾的亲水性外表面之间的相互作用不相容,AV在脂质膜中不稳定;虽然FF,FL,LF和LL具有疏水性外表面表现出良好的稳定性。在四种亲水通道FF,FL,LF和LL中,形成水链;根据沟道直径,链条的数量从多个两到一个到一个;此外,水经历了单文件扩散,并且随着沟道直径增加,移动性增强。 FF通道中的水渗透率为9.20 / ns,约为水素的三倍;但是,FL,LF和LL的速率要慢得多。有趣的是,可以通过脂质膜上的横向应力/菌株调节速率。仿真研究为脂膜中嵌入的二肽通道的稳定性提供了基础知识,定量表征水结构,动力学和通道渗透。这些微观洞察对于新的水道的开发是有用的。

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