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首页> 外文期刊>Cell and Tissue Biology >Cytoskeleton Structure and Adhesion Properties of Human Stromal Precursors under Conditions of Simulated Microgravity
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Cytoskeleton Structure and Adhesion Properties of Human Stromal Precursors under Conditions of Simulated Microgravity

机译:模拟微重力条件下人基质前体的细胞骨架结构和粘附特性

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摘要

During spaceflight and in simulated microgravity (SMG), cytoskeleton rearrangements were observed in lymphocytes, glial cells and osteoblasts. One potential mechanism for the cytoskeletal gravisensi-tivity of cells is the disruption of the extracellular matrix and integrin interactions. We investigated the effect of SMG on the structure of the actin cytoskeleton, distribution of cellular vinculin, the expression of some integrin subtypes and cellular adhesion molecules in cultured mesenchymal stem cells (hMSCs) derived from human bone marrow in vitro. Simulated microgravity was produced by desktop RPM equipment (Dutch Space, Netherlands). Cells were exposed to simulated microgravity for 30 min to 120 h. The results showed that the actin cytoskeletonwas reorganized very quickly (30 min). Later (6,24, and 48 h), the number of cells with disrupted actin cytoskeletons was increased; however, after 120 h of exposure, cells partly regained their F-actin structures. RPM exposure augmented the number of cells that express integrin- alpha 2. We also observed a decrease in the number of VCAM-1-positive cells and changes in the expression of ICAM-1. Our findings indicate that SMG induces reversible microfilament reorganization in hMSCs and alters their adhesion properties.
机译:在太空飞行和模拟微重力(SMG)期间,在淋巴细胞,神经胶质细胞和成骨细胞中观察到细胞骨架重排。细胞的细胞骨架引力的一种潜在机制是细胞外基质的破坏和整联蛋白的相互作用。我们研究了SMG对体外培养的人骨髓间充质干细胞(hMSCs)中肌动蛋白细胞骨架的结构,细胞链蛋白的分布,某些整联蛋白亚型的表达和细胞粘附分子的影响。模拟的微重力是由台式RPM设备(荷兰Dutch Space)产生的。将细胞暴露于模拟微重力下30分钟至120小时。结果表明肌动蛋白的细胞骨架重组非常快(30分钟)。后来(6、24和48小时),肌动蛋白细胞骨架被破坏的细胞数量增加了。然而,暴露120小时后,细胞部分恢复了它们的F-肌动蛋白结构。 RPM暴露增加了表达整联蛋白α2的细胞数量。我们还观察到VCAM-1阳性细胞数量减少,ICAM-1表达改变。我们的发现表明,SMG诱导hMSCs中可逆的微丝重组,并改变其粘附特性。

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