Side-Chain and Ring-Size Effects on Permeability in Artificial Water Channels

IF 2.9 2区 化学 Q3 CHEMISTRY, PHYSICAL
Tyler J. Duncan, Harekrushna Behera, Michael F. Meng, Zidan Zhang, Nico Marioni, Meron Tadesse, Manish Kumar and Venkat Ganesan*, 
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Abstract

Artificial water channels (AWCs) have emerged as a promising framework for stable water permeation, with water transport rates comparable to aquaporins (3.4–40.3 × 108 H2O/channel/s). In this study, we probe the influence of ring-size and side-chain length on the water permeability observed within a class of AWCs termed ligand-appended pillar[n]arenes (LAPs) that have an adjustable ring-size (m) and side-chain length (n). Through all-atom molecular dynamics simulations, we calculate the permeability of these channels using the collective diffusion model and find their permeabilities. We characterize the mechanistic influence of pillar[n]arene ring-size and side-chain length on the channel water permeability by analyzing the characteristics of the internal permeating water-wire and the surrounding channel structure. We observe that water permeability decreases as a function of increasing ring-size due to increases in hydrophilic contacts between the permeating water-wire and the oxygen groups on the channel wall. Further, we observe an increase in water permeability as a function of side-chain length due to increased partitioning of the channel terminal groups into the hydrophilic blocks of the surrounding bilayer. For the LAP6 channel, with increase in side-chain length, the distance between terminal groups increases and leads to an increase in pore size, thereby enhancing water permeability. In the case of LAP5, as side-chain length increases, the channel displays a compensatory effect between tilt and bend angle due to the flexible side-chains. Such flexibility leads to higher terminal group partitioning in the hydrophilic blocks of the bilayer and extends the permeating water-wire. This increase in water-wire length and hydrophilic block access overcomes the nonmonotonic pore size trend in pillar[5]arene channels.

Abstract Image

侧链和环尺寸对人工水道渗透性的影响
人工水通道(AWCs)已成为一种很有前途的稳定水渗透框架,其输水速率与水通道蛋白相当(3.4-40.3 × 108 H2O/channel/s)。在这项研究中,我们探讨了环尺寸和侧链长度对一类被称为配体附加柱[n]芳烃(LAPs)的AWCs的水渗透性的影响,这些AWCs具有可调节的环尺寸(m)和侧链长度(n)。通过全原子分子动力学模拟,我们使用集体扩散模型计算了这些通道的渗透率,并找到了它们的渗透率。通过分析柱[n]芳烃环尺寸和侧链长度对通道透水性的影响机理,分析了内部渗透水线和周围通道结构的特征。我们观察到,水的渗透性随着环尺寸的增加而降低,这是由于渗透的水丝与通道壁上的氧基之间的亲水性接触增加。此外,我们观察到水渗透性的增加是侧链长度的函数,这是由于通道末端基团在周围双分子层的亲水性块中的分配增加。对于LAP6通道,随着侧链长度的增加,末端基团之间的距离增加,导致孔径增大,从而提高了水的渗透性。在LAP5的情况下,随着侧链长度的增加,由于侧链的柔性,通道在倾斜和弯曲角度之间表现出补偿效应。这种灵活性导致双分子层亲水性块中更高的末端基团分配,并延长了渗透的水丝。这种水丝长度的增加和亲水块的进入克服了柱状[5]芳烃通道的非单调孔径趋势。
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来源期刊
CiteScore
5.80
自引率
9.10%
发文量
965
审稿时长
1.6 months
期刊介绍: An essential criterion for acceptance of research articles in the journal is that they provide new physical insight. Please refer to the New Physical Insights virtual issue on what constitutes new physical insight. Manuscripts that are essentially reporting data or applications of data are, in general, not suitable for publication in JPC B.
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