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一种用于从细胞中分离出的肌动蛋白应力纤维的多功能微机械测试仪。

A versatile micro-mechanical tester for actin stress fibers isolated from cells.

作者信息

Matsui Tsubasa S, Deguchi Shinji, Sakamoto Naoya, Ohashi Toshiro, Sato Masaaki

机构信息

Department of Bioengineering and Robotics, Graduate School of Engineering, Tohoku University, Sendai, Japan.

出版信息

Biorheology. 2009;46(5):401-15. doi: 10.3233/BIR-2009-0551.

Abstract

Conventional atomic force microscopy is one of the major techniques to evaluate mechanical properties of cells and subcellular components. The use of a cantilever probe for sample manipulation within the vertical plane often makes absolute positioning of the probe, subject to thermal drift, difficult. In addition, the vertical test is unable to observe changes in the sample structure responsible for mechanical behavior detected by the probe. In the present study, an alternative mechanical tester was developed that incorporated a pair of micro-needles to manipulate a sample in a project plane, allowing acquisition of the accurate probe position and entire sample image. Using a vision-based feedback control, a micro-needle driven by a piezo actuator is moved to give user-defined displacements or forces to sample. To show its usefulness and versatility, three types of viscoelastic measurements on actin stress fibers isolated from smooth muscle cells were demonstrated: strain rate-controlled tensile tests, relaxation tests and creep tests. Fluorescence imaging of the stress fibers using Qdots over the course of the measurements, obtained through multiple image detectors, was also carried out. The technique described here is useful for examining the quantitative relationship between mechanical behavior and related structural changes of biomaterials.

摘要

传统原子力显微镜是评估细胞和亚细胞成分力学性质的主要技术之一。在垂直平面内使用悬臂探针进行样品操作时,由于热漂移,常常难以实现探针的绝对定位。此外,垂直测试无法观察到与探针检测到的力学行为相关的样品结构变化。在本研究中,开发了一种替代的力学测试仪,该测试仪包含一对微针,用于在投影平面内操纵样品,从而能够获取精确的探针位置和整个样品图像。利用基于视觉的反馈控制,由压电致动器驱动的微针移动,以向样品施加用户定义的位移或力。为了展示其有用性和多功能性,对从平滑肌细胞分离出的肌动蛋白应力纤维进行了三种类型的粘弹性测量:应变率控制拉伸试验、松弛试验和蠕变试验。在测量过程中,还通过多个图像探测器对使用量子点的应力纤维进行了荧光成像。这里描述的技术对于研究生物材料力学行为与相关结构变化之间的定量关系很有用。

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