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锥形纳米孔中的戏剧性压力敏感离子传导。

Dramatic pressure-sensitive ion conduction in conical nanopores.

机构信息

Laboratoire de Physique Statistique, Ecole Normale Supérieure, 75005 Paris, France.

Laboratoire de Physique Statistique, Ecole Normale Supérieure, 75005 Paris, France

出版信息

Proc Natl Acad Sci U S A. 2018 Apr 17;115(16):4063-4068. doi: 10.1073/pnas.1721987115. Epub 2018 Apr 2.

DOI:10.1073/pnas.1721987115
PMID:29610303
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5910861/
Abstract

Ion transporters in Nature exhibit a wealth of complex transport properties such as voltage gating, activation, and mechanosensitive behavior. When combined, such processes result in advanced ionic machines achieving active ion transport, high selectivity, or signal processing. On the artificial side, there has been much recent progress in the design and study of transport in ionic channels, but mimicking the advanced functionalities of ion transporters remains as yet out of reach. A prerequisite is the development of ionic responses sensitive to external stimuli. In the present work, we report a counterintuitive and highly nonlinear coupling between electric and pressure-driven transport in a conical nanopore, manifesting as a strong pressure dependence of the ionic conductance. This result is at odds with standard linear response theory and is akin to a mechanical transistor functionality. We fully rationalize this behavior on the basis of the coupled electrohydrodynamics in the conical pore by extending the Poisson-Nernst-Planck-Stokes framework. The model is shown to capture the subtle mechanical balance occurring within an extended spatially charged zone in the nanopore. The pronounced sensitivity to mechanical forcing offers leads in tuning ion transport by mechanical stimuli. The results presented here provide a promising avenue for the design of tailored membrane functionalities.

摘要

自然界中的离子转运体表现出丰富的复杂转运特性,如电压门控、激活和力敏行为。当这些过程结合在一起时,就会产生先进的离子机器,实现主动离子转运、高选择性或信号处理。在人工方面,离子通道中传输的设计和研究取得了很大进展,但模仿离子转运体的高级功能仍然遥不可及。一个前提是开发对外部刺激敏感的离子响应。在目前的工作中,我们报告了锥形纳米孔中电驱动和压力驱动输运之间的一种反直觉的高度非线性耦合,表现为离子电导率对压力的强烈依赖性。这一结果与标准线性响应理论相悖,类似于机械晶体管的功能。我们通过扩展泊松-纳斯特-普朗克-斯托克斯框架,基于锥形孔中的耦合电动力学,对这种行为进行了充分的合理化。该模型表明,在纳米孔中扩展的空间带电区内部存在着微妙的机械平衡。对机械力的显著敏感性为通过机械刺激来调节离子输运提供了线索。这里呈现的结果为设计定制的膜功能提供了一个有前景的途径。

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