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电场诱导激发下基于凝聚物的原始细胞中的非平衡行为

Non-equilibrium behaviour in coacervate-based protocells under electric-field-induced excitation.

作者信息

Yin Yudan, Niu Lin, Zhu Xiaocui, Zhao Meiping, Zhang Zexin, Mann Stephen, Liang Dehai

机构信息

Beijing National Laboratory for Molecular Sciences, MOE Key Laboratory of Polymer Chemistry and Physics, College of Chemistry and Molecular Engineering, Peking University, Beijing 100871, China.

Beijing National Laboratory for Molecular Sciences, MOE Key Laboratory of Bioorganic Chemistry and Molecular Engineering, College of Chemistry and Molecular Engineering, Peking University, Beijing 100871, China.

出版信息

Nat Commun. 2016 Feb 15;7:10658. doi: 10.1038/ncomms10658.

Abstract

Although numerous strategies are now available to generate rudimentary forms of synthetic cell-like entities, minimal progress has been made in the sustained excitation of artificial protocells under non-equilibrium conditions. Here we demonstrate that the electric field energization of coacervate microdroplets comprising polylysine and short single strands of DNA generates membrane-free protocells with complex, dynamical behaviours. By confining the droplets within a microfluidic channel and applying a range of electric field strengths, we produce protocells that exhibit repetitive cycles of vacuolarization, dynamical fluctuations in size and shape, chaotic growth and fusion, spontaneous ejection and sequestration of matter, directional capture of solute molecules, and pulsed enhancement of enzyme cascade reactions. Our results highlight new opportunities for the study of non-equilibrium phenomena in synthetic protocells, provide a strategy for inducing complex behaviour in electrostatically assembled soft matter microsystems and illustrate how dynamical properties can be activated and sustained in microcompartmentalized media.

摘要

尽管现在有许多策略可用于生成基本形式的合成细胞样实体,但在非平衡条件下对人工原细胞进行持续激发方面进展甚微。在此,我们证明了由聚赖氨酸和短单链DNA组成的凝聚微滴的电场激发可产生具有复杂动态行为的无膜原细胞。通过将微滴限制在微流体通道内并施加一系列电场强度,我们产生了表现出空泡化重复循环、大小和形状动态波动、混沌生长和融合、物质的自发喷射和隔离、溶质分子的定向捕获以及酶级联反应的脉冲增强的原细胞。我们的结果突出了合成原细胞中非平衡现象研究的新机会,为在静电组装的软物质微系统中诱导复杂行为提供了一种策略,并说明了如何在微分隔介质中激活和维持动态特性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4f05/4756681/0dd53c9c642f/ncomms10658-f1.jpg

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