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基质刚性影响声孔效应介导的单细胞基因转染
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作者 荣宁 汪曣 范真真 《应用声学》 CSCD 北大核心 2020年第5期762-768,共7页
为了深入理解基质的物理特性对单细胞基因转染的影响规律,实验研究了基质刚性对单细胞质粒DNA转染效果的影响。实验采用高声压短脉冲(0.45 MPa,10μs)条件的超声对培养在不同硬度凝胶基质(软的凝胶基质:0.2 kPa,硬的凝胶基质:40 kPa)上... 为了深入理解基质的物理特性对单细胞基因转染的影响规律,实验研究了基质刚性对单细胞质粒DNA转染效果的影响。实验采用高声压短脉冲(0.45 MPa,10μs)条件的超声对培养在不同硬度凝胶基质(软的凝胶基质:0.2 kPa,硬的凝胶基质:40 kPa)上的力学敏感细胞NIH 3T3进行质粒DNA转染实验。实验结果表明,培养在硬的凝胶基质上的细胞,质粒DNA转染效率明显高于培养在软的凝胶基质上的细胞。进一步对质粒DNA进行荧光示踪可知培养在不同刚性基质上的细胞导入质粒DNA的方式不同。当细胞被培养在硬的凝胶基质上时,通过声致穿孔产生的小孔进入细胞内的质粒DNA更多,而培养在软的凝胶基质上的细胞,更多的质粒DNA可以通过非声致穿孔作用。细胞骨架蛋白分布规律表明,硬的凝胶基质上培养的细胞内有更多的F肌动蛋白微丝,可以更好地支撑起细胞的铺展形态,相对不容易发生内吞作用。而软的凝胶基质上培养的细胞内F肌动蛋白则更多以球形状态存在,细胞形貌骗向圆形,此时更容易发生胞吞作用。 展开更多
关键词 基质刚性 超声 微泡 声致穿孔
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Biophysical Regulation of Cell Behavior-Cross Talk between Substrate Stiffness and Nanotopography 被引量:14
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作者 Yong Yang Kai Wang +1 位作者 Xiaosong Gu Kam W. Leong 《Engineering》 SCIE EI 2017年第1期36-54,共19页
The stiffness and nanotopographical characteristics of the extracellular matrix (ECM) influence numerous developmental, physiological, and pathological processes in vivo. These biophysical cues have therefore been a... The stiffness and nanotopographical characteristics of the extracellular matrix (ECM) influence numerous developmental, physiological, and pathological processes in vivo. These biophysical cues have therefore been applied to modulate almost all aspects of cell behavior, from cell adhesion and spreading to proliferation and differentiation. Delineation of the biophysical modulation of cell behavior is critical to the rational design of new biomaterials, implants, and medical devices. The effects of stiffness and topographical cues on cell behavior have previously been reviewed, respectively; however, the interwoven effects of stiffness and nanotopographical cues on cell behavior have not been well described, despite similarities in phenotypic manifestations. Herein, we first review the effects of substrate stiffness and nanotopography on cell behavior, and then focus on intracellular transmission of the biophysical signals from integrins to nucleus. Attempts are made to connect extracellular regulation of cell behavior with the biophysical cues. We then discuss the challenges in dissecting the biophysical regulation of cell behavior and in translating the mechanistic understanding of these cues to tissue engineering and regenerative medicine. 展开更多
关键词 Extracellular matrix Stiffness Nanotopography Adhesive ligands Cell behavior
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