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基于两亲性嵌段共聚物的多功能纳米门对外界多重刺激的响应设计。

Design of Multifunctional Nanogate in Response to Multiple External Stimuli Using Amphiphilic Diblock Copolymer.

机构信息

Department of Biomedical Engineering, Northwestern University , Evanston, Illinois 60208, United States.

Department of Biomedical Engineering and Department of Chemistry and Chemistry of Life Processes Institute, Northwestern University , Evanston, Illinois 60208, United States.

出版信息

J Am Chem Soc. 2017 May 10;139(18):6422-6430. doi: 10.1021/jacs.7b02057. Epub 2017 Apr 28.

Abstract

Nature uses the interplay between hydrophobic and electrostatic interactions of disordered proteins to orchestrate complicated molecular gates such as the nuclear pore complex to control the transport of biological masses. Inspired by nature, we here theoretically show that well-defined gate shape, sensitive response to pH and salt concentration, and selectivity in cargo transport can be simultaneously achieved by grafting amphiphilic diblock copolymers made of sequence-controlled hydrophobic and ionizable monomers on the inner surface of solid-state nanopore. As a result, multiple functions such as ionic gating and molecular filtering can be implemented into one single copolymer nanogate. The gate structure and thermodynamics is a result of the self-assembly of the sequence-designed copolymer in the confined geometry that minimizes the free energy of the system. Our theory further predicts a phase transition and discontinuous charge regulation of the confined copolymer that allows logical gating in biosensors and nanofluidic devices. As an example of application, a nanolocker with the potential of molecular pumping has also been designed with the cooperation of two amphiphilic copolymer gates. Our results highlight the importance of polymer sequence in nanogating, and these insights can be used to guide the rational design of polymer-coated smart nanopores.

摘要

自然界利用无序蛋白质的疏水相互作用和静电相互作用的相互作用来调控复杂的分子门,如核孔复合物,以控制生物物质的运输。受自然启发,我们在这里从理论上表明,通过在固态纳米孔的内表面接枝由序列控制的疏水性和亲电性单体组成的两亲性嵌段共聚物,可以同时实现良好定义的门形状、对 pH 值和盐浓度的敏感响应以及货物运输的选择性。结果,多种功能,如离子门控和分子过滤,可以集成到一个共聚物纳米门中。门结构和热力学是序列设计的共聚物在最小化系统自由能的受限几何形状中自组装的结果。我们的理论进一步预测了受限共聚物的相变和不连续电荷调节,允许在生物传感器和纳流控器件中进行逻辑门控。作为应用的一个例子,还设计了一个具有分子泵潜力的纳米锁,它与两个两亲性共聚物门的合作。我们的结果强调了聚合物序列在纳米门控中的重要性,这些见解可用于指导涂覆聚合物的智能纳米孔的合理设计。

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