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Impact of Simulated Microgravity on Oligodendrocyte Development: Implications for Central Nervous System Repair

机译:模拟微重力对少突胶质细胞发育的影响:对中枢神经系统修复的影响。

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摘要

We have recently established a culture system to study the impact of simulated microgravity on oligodendrocyte progenitor cells (>OPCs) development. We subjected mouse and human OPCs to a short exposure of simulated microgravity produced by a 3D-Clinostat robot. Our results demonstrate that rodent and human OPCs display enhanced and sustained proliferation when exposed to simulated microgravity as assessed by several parameters, including a decrease in the cell cycle time. Additionally, OPC migration was examined in vitro using time-lapse imaging of cultured OPCs. Our results indicated that OPCs migrate to a greater extent after stimulated microgravity than in normal conditions, and this enhanced motility was associated with OPC morphological changes. The lack of normal gravity resulted in a significant increase in the migration speed of mouse and human OPCs and we found that the average leading process in migrating bipolar OPCs was significantly longer in microgravity treated cells than in controls, demonstrating that during OPC migration the lack of gravity promotes leading process extension, an essential step in the process of OPC migration. Finally, we tested the effect of simulated microgravity on OPC differentiation. Our data showed that the expression of mature oligodendrocyte markers was significantly delayed in microgravity treated OPCs. Under conditions where OPCs were allowed to progress in the lineage, simulated microgravity decreased the proportion of cells that expressed mature markers, such as CC1 and MBP, with a concomitant increased number of cells that retained immature oligodendrocyte markers such as Sox2 and NG2. Development of methodologies aimed at enhancing the number of OPCs and their ability to progress on the oligodendrocyte lineage is of great value for treatment of demyelinating disorders. To our knowledge, this is the first report on the gravitational modulation of oligodendrocyte intrinsic plasticity to increase their progenies.
机译:我们最近建立了一个培养系统,以研究模拟微重力对少突胶质祖细胞(> OPCs )发育的影响。我们对小鼠和人类的OPC进行了3D-Clinostat机器人产生的模拟微重力的短时间曝光。我们的结果表明,啮齿动物和人的OPC在暴露于模拟微重力下时表现出增强且持续的增殖,这通过几个参数评估,包括细胞周期时间的减​​少。另外,使用培养的OPC的延时成像在体外检查了OPC的迁移。我们的结果表明,OPCs在受到微重力作用后比正常条件下迁移的程度更大,而这种增强的运动性与OPC形态变化有关。正常重力的缺乏导致小鼠和人类OPC的迁移速度显着增加,我们发现在微重力处理的细胞中迁移双极OPC的平均引导过程明显比对照组长,这表明在OPC迁移过程中缺乏重力促进了领先的工艺扩展,这是OPC迁移过程中必不可少的步骤。最后,我们测试了模拟微重力对OPC分化的影响。我们的数据表明,在微重力处理的OPC中,成熟的少突胶质细胞标志物的表达明显延迟。在允许OPC在谱系中进行的条件下,模拟微重力降低了表达成熟标记物(例如CC1和MBP)的细胞比例,同时保留了不成熟的少突胶质细胞标记物(例如Sox2和NG2)的细胞数量也随之增加。旨在增加OPC数量及其在少突胶质细胞谱系上发展的能力的方法学的开发对于脱髓鞘疾病的治疗具有重要价值。据我们所知,这是第一个关于重力调节少突胶质细胞固有可塑性以增加其子代的报道。

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