Huang Hayden, Dong Chen Y, Kwon Hyuk-Sang, Sutin Jason D, Kamm Roger D, So Peter T C
Department of Mechanical Engineering, MIT, Cambridge, Massachusetts 02139, USA.
Biophys J. 2002 Apr;82(4):2211-23. doi: 10.1016/S0006-3495(02)75567-7.
The ability to apply quantifiable mechanical stresses at the microscopic scale is critical for studying cellular responses to mechanical forces. This necessitates the use of force transducers that can apply precisely controlled forces to cells while monitoring the responses noninvasively. This paper describes the development of a micromanipulation workstation integrating two-photon, three-dimensional imaging with a high-force, uniform-gradient magnetic manipulator. The uniform-gradient magnetic field applies nearly uniform forces to a large cell population, permitting statistical quantification of select molecular responses to mechanical stresses. The magnetic transducer design is capable of exerting over 200 pN of force on 4.5-microm-diameter paramagnetic particles and over 800 pN on 5.0-microm ferromagnetic particles. These forces vary within +/-10% over an area 500 x 500 microm2. The compatibility with the use of high numerical aperture (approximately 1.0) objectives is an integral part of the workstation design allowing submicron-resolution, three-dimensional, two-photon imaging. Three-dimensional analyses of cellular deformation under localized mechanical strain are reported. These measurements indicate that the response of cells to large focal stresses may contain three-dimensional global deformations and show the suitability of this workstation to further studying cellular response to mechanical stresses.
在微观尺度上施加可量化机械应力的能力对于研究细胞对机械力的反应至关重要。这就需要使用力传感器,在对反应进行无创监测的同时,能够向细胞精确施加可控力。本文描述了一种微操纵工作站的研发,该工作站将双光子三维成像与高力、均匀梯度磁操纵器集成在一起。均匀梯度磁场对大量细胞群体施加近乎均匀的力,从而能够对特定分子对机械应力的反应进行统计量化。磁传感器设计能够对直径4.5微米的顺磁性颗粒施加超过200皮牛的力,对直径5.0微米的铁磁性颗粒施加超过800皮牛的力。在500×500微米²的区域内,这些力的变化在±10%以内。与高数值孔径(约为1.0)物镜配合使用的兼容性是工作站设计的一个组成部分,可实现亚微米分辨率的三维双光子成像。本文报告了局部机械应变下细胞变形的三维分析。这些测量结果表明,细胞对大的局部应力的反应可能包含三维整体变形,并表明该工作站适用于进一步研究细胞对机械应力的反应。