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通过设计微管的电学和力学特性来控制分子穿梭体

Control of molecular shuttles by designing electrical and mechanical properties of microtubules.

作者信息

Isozaki Naoto, Shintaku Hirofumi, Kotera Hidetoshi, Hawkins Taviare L, Ross Jennifer L, Yokokawa Ryuji

机构信息

Department of Micro Engineering, Kyoto University, Kyoto-Daigaku Katsura, Nishikyo-ku, Kyoto 615-8540, Japan.

Department of Physics, University of Wisconsin-La Crosse, 1725 State Street, La Crosse, WI 54601, USA.

出版信息

Sci Robot. 2017 Sep 27;2(10). doi: 10.1126/scirobotics.aan4882.

Abstract

Kinesin-driven microtubules have been focused on to serve as molecular transporters, called "molecular shuttles," to replace micro/nanoscale molecular manipulations necessitated in micro total analysis systems. Although transport, concentration, and detection of target molecules have been demonstrated, controllability of the transport directions is still a major challenge. Toward broad applications of molecular shuttles by defining multiple moving directions for selective molecular transport, we integrated a bottom-up molecular design of microtubules and a top-down design of a microfluidic device. The surface charge density and stiffness of microtubules were controlled, allowing us to create three different types of microtubules, each with different gliding directions corresponding to their electrical and mechanical properties. The measured curvature of the gliding microtubules enabled us to optimize the size and design of the device for molecular sorting in a top-down approach. The integrated bottom-up and top-down design achieved separation of stiff microtubules from negatively charged, soft microtubules under an electric field. Our method guides multiple microtubules by integrating molecular control and microfluidic device design; it is not only limited to molecular sorters but is also applicable to various molecular shuttles with the high controllability in their movement directions.

摘要

驱动蛋白驱动的微管已被重点关注,用作称为“分子穿梭器”的分子转运体,以取代微全分析系统中所需的微/纳米级分子操作。尽管已证明了目标分子的运输、浓缩和检测,但运输方向的可控性仍然是一个重大挑战。为了通过定义多个移动方向进行选择性分子运输来广泛应用分子穿梭器,我们将微管的自下而上分子设计与微流控装置的自上而下设计相结合。控制了微管的表面电荷密度和刚度,使我们能够创建三种不同类型的微管,每种微管具有与其电学和力学性质相对应的不同滑动方向。通过测量滑动微管的曲率,我们能够以自上而下的方式优化用于分子分选的装置的尺寸和设计。这种自下而上和自上而下的集成设计实现了在电场下将刚性微管与带负电荷的柔性微管分离。我们的方法通过整合分子控制和微流控装置设计来引导多个微管;它不仅限于分子分选器,还适用于各种在其移动方向上具有高可控性的分子穿梭器。

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