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用于细胞增殖研究的磁性微柱阵列(mMPA)内的三维均匀单细胞循环拉伸

Three Dimensional and Homogenous Single Cell Cyclic Stretch within a Magnetic Micropillar Array (mMPA) for a Cell Proliferation Study.

作者信息

Gao Yibo, Zhou Bingpu, Wu Xiaoxiao, Gao Xinghua, Zeng Xiping, Xie Jiao, Wang Cong, Ye Ziran, Wan Jun, Wen Weijia

机构信息

Environmental Science Programs, Hong Kong University of Science and Technology, Clear Water Bay, Kowloon, Hong Kong, China.

Department of Physics, Hong Kong University of Science and Technology, Clear Water Bay, Kowloon, Hong Kong, China.

出版信息

ACS Biomater Sci Eng. 2016 Jan 11;2(1):65-72. doi: 10.1021/acsbiomaterials.5b00381. Epub 2015 Dec 8.

Abstract

The physical properties of the extracellular matrix (ECM) are a key aspect of the cell microenvironment. A biological system is a highly dynamic organization. In our study, we designed and prepared a large area of magnetic PDMS elastomer micropillar array (mMPA) with robust and tunable movement for cell mechanics study. The rotational movement frequency of the micropillars could be precisely controlled by a home-built magnetic actuation apparatus. Cells cultured in the mMPA could be suspended in between two micropillars in a single level and exhibited a 3D structure. With the rotational movement of the micropillar, a homogeneous stretchable force could be applied to a single cell along it long axis with various frequencies. We exclusively studied the influence of dynamic properties of the micropillar movement on cell behaviors. We found that, by fixing the amplitude of the stretchable force, the frequency-based properties of the cell microenvironment could significantly change cell functions. The cell behaviors are dependent on the micropillar movement frequency and a transition from proliferation to apoptosis/death exhibited with the increment of the force application frequency.

摘要

细胞外基质(ECM)的物理特性是细胞微环境的一个关键方面。生物系统是一个高度动态的组织。在我们的研究中,我们设计并制备了大面积具有稳健且可调运动的磁性聚二甲基硅氧烷(PDMS)弹性体微柱阵列(mMPA),用于细胞力学研究。微柱的旋转运动频率可通过自制的磁驱动装置精确控制。在mMPA中培养的细胞可以单层形式悬浮在两个微柱之间,并呈现出三维结构。随着微柱的旋转运动,可以沿单个细胞的长轴以各种频率施加均匀的拉伸力。我们专门研究了微柱运动的动态特性对细胞行为的影响。我们发现,通过固定拉伸力的幅度,基于频率的细胞微环境特性可显著改变细胞功能。细胞行为取决于微柱运动频率,并且随着力施加频率的增加会出现从增殖到凋亡/死亡的转变。

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