基于运动蛋白的分子穿梭:合成环境中的主动运输

Henry Hess, Viola Vogel
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引用次数: 194

摘要

细胞内的主动转运利用运动蛋白和肌凝蛋白等分子马达,为将主动转运整合到合成装置中提供了灵感。混合装置,在合成环境中使用运动蛋白,是分子穿梭的第一个原型。本文从工程的角度讨论了运动蛋白的基本特性,并综述了将运动蛋白(如肌凝蛋白和运动蛋白)结合到装置中的实验。构建分子梭的关键问题是:引导运动方向、控制速度、装卸货物。依靠表面形貌和化学以及流场和电场的各种技术已经发展到指导分子梭在表面上的运动。ATP浓度的控制,作为一种燃料供应,可以作为控制运动速度的手段。装载过程需要将货物与航天飞机耦合在一起,最好是通过一个牢固而特殊的连接。可以设想分子穿梭的应用,例如在纳米机电系统(NEMS)领域,其中标度定律有利于主动传输而不是流体流动,以及在新材料的自下而上组装中。
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Molecular shuttles based on motor proteins: active transport in synthetic environments

Active transport in cells, utilizing molecular motors like kinesin and myosin, provides the inspiration for the integration of active transport into synthetic devices. Hybrid devices, employing motor proteins in a synthetic environment, are the first prototypes of molecular shuttles. Here the basic characteristics of motor proteins are discussed from an engineering point of view, and the experiments aimed at incorporating motor proteins, such as myosins and kinesins, into devices are reviewed. The key problems for the construction of a molecular shuttle are: guiding the direction of motion, controlling the speed, and loading and unloading of cargo. Various techniques, relying on surface topography and chemistry as well as flow fields and electric fields, have been developed to guide the movement of molecular shuttles on surfaces. The control of ATP concentration, acting as a fuel supply, can serve as a means to control the speed of movement. The loading process requires the coupling of cargo to the shuttle, ideally by a strong and specific link. Applications of molecular shuttles can be envisioned, e.g. in the field of nano-electro-mechanical systems (NEMS), where scaling laws favor active transport over fluid flow, and in the bottom-up assembly of novel materials.

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