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Impact of Simulated Microgravity on Cytoskeleton and Viscoelastic Properties of Endothelial Cell

机译:模拟微重力对内皮细胞细胞骨架和粘弹性的影响

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This study focused on the effects of simulated microgravity (s-μg) on mechanical properties, major cytoskeleton biopolymers, and morphology of endothelial cells (ECs). The structural and functional integrity of ECs are vital to regulate vascular homeostasis and prevent atherosclerosis. Furthermore, these highly gravity sensitive cells play a key role in pathogenesis of many diseases. In this research, impacts of s-μg on mechanical behavior of human umbilical vein endothelial cells were investigated by utilizing a three-dimensional random positioning machine (3D-RPM). Results revealed a considerable drop in cell stiffness and viscosity after 24?hrs of being subjected to weightlessness. Cortical rigidity experienced relatively immediate and significant decline comparing to the stiffness of whole cell body. The cells became rounded in morphology while western blot analysis showed reduction of the main cytoskeletal components. Moreover, fluorescence staining confirmed disorganization of both actin filaments and microtubules (MTs). The results were compared statistically among test and control groups and it was concluded that s-μg led to a significant alteration in mechanical behavior of ECs due to remodeling of cell cytoskeleton.
机译:这项研究的重点是模拟微重力(s-μg)对力学性能,主要细胞骨架生物聚合物和内皮细胞(EC)形态的影响。 EC的结构和功能完整性对于调节血管稳态和预防动脉粥样硬化至关重要。此外,这些高度重力敏感的细胞在许多疾病的发病机理中起关键作用。在这项研究中,利用三维随机定位仪(3D-RPM)研究了s-μg对人脐静脉内皮细胞机械行为的影响。结果显示,失重24小时后,细胞刚度和粘度显着下降。与整个细胞体的刚度相比,皮质刚度经历了相对直接且显着的下降。细胞的形态变得圆润,而蛋白质印迹分析显示主要细胞骨架成分减少。此外,荧光染色证实了肌动蛋白丝和微管(MTs)的混乱。在测试组和对照组之间进行统计学比较,得出的结论是,由于细胞骨架的重建,s-μg导致EC的机械行为发生了显着变化。

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