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利用共聚焦显微镜和基于磁镊的微观流变学确定致密微管网络的结构-力学关系。

Determining the structure-mechanics relationships of dense microtubule networks with confocal microscopy and magnetic tweezers-based microrheology.

作者信息

Yang Yali, Valentine Megan T

机构信息

Department of Mechanical Engineering, University of California, Santa Barbara, California, USA.

出版信息

Methods Cell Biol. 2013;115:75-96. doi: 10.1016/B978-0-12-407757-7.00006-2.

Abstract

The microtubule (MT) cytoskeleton is essential in maintaining the shape, strength, and organization of cells. Its spatiotemporal organization is fundamental for numerous dynamic biological processes, and mechanical stress within the MT cytoskeleton provides an important signaling mechanism in mitosis and neural development. This raises important questions about the relationships between structure and mechanics in complex MT structures. In vitro, reconstituted cytoskeletal networks provide a minimal model of cell mechanics while also providing a testing ground for the fundamental polymer physics of stiff polymer gels. Here, we describe our development and implementation of a broad tool kit to study structure-mechanics relationships in reconstituted MT networks, including protocols for the assembly of entangled and cross-linked MT networks, fluorescence imaging, microstructure characterization, construction and calibration of magnetic tweezers devices, and mechanical data collection and analysis. In particular, we present the design and assembly of three neodymium iron boron (NdFeB)-based magnetic tweezers devices optimized for use with MT networks: (1) high-force magnetic tweezers devices that enable the application of nano-Newton forces and possible meso- to macroscale materials characterization; (2) ring-shaped NdFeB-based magnetic tweezers devices that enable oscillatory microrheology measurements; and (3) portable magnetic tweezers devices that enable direct visualization of microscale deformation in soft materials under applied force.

摘要

微管(MT)细胞骨架对于维持细胞的形状、强度和组织至关重要。其时空组织对于众多动态生物学过程至关重要,并且MT细胞骨架内的机械应力在有丝分裂和神经发育中提供了一种重要的信号传导机制。这就引发了关于复杂MT结构中结构与力学之间关系的重要问题。在体外,重构的细胞骨架网络提供了一个细胞力学的最小模型,同时也为刚性聚合物凝胶的基础聚合物物理学提供了一个试验场。在这里,我们描述了我们开发和实施的一套广泛的工具包,用于研究重构MT网络中的结构 - 力学关系,包括缠结和交联MT网络组装的方案、荧光成像、微观结构表征、磁镊装置的构建和校准以及力学数据收集和分析。特别是,我们展示了三种基于钕铁硼(NdFeB)的磁镊装置的设计和组装,这些装置针对与MT网络一起使用进行了优化:(1)高力磁镊装置,能够施加纳牛顿力并可能进行中观到宏观尺度的材料表征;(2)基于环形NdFeB的磁镊装置,能够进行振荡微流变测量;(3)便携式磁镊装置,能够在施加力的情况下直接观察软材料中的微观变形。

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