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首页> 外文期刊>Brain pathology >Third international workshop for glycosylation defects in muscular dystrophies, 18-19 April 2013, Charlotte, USA
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Third international workshop for glycosylation defects in muscular dystrophies, 18-19 April 2013, Charlotte, USA

机译:第三届国际肌营养不良症糖基化缺陷国际研讨会,2013年4月18日至19日,美国夏洛特

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During oocyte meiosis, a spindle forms in the central cytoplasm and migrates to the cortex. Subsequently, the oocyte extrudes a small body and forms a highly polarized egg; this process is regulated primarily by actin. ROCK is a Rho-GTPase effector that is involved in various cellular functions, such as stress fiber formation, cell migration, tumor cell invasion, and cell motility. In this study, we investigated possible roles for ROCK in mouse oocyte meiosis. ROCK was localized around spindles after germinal vesicle breakdown and was colocalized with cytoplasmic actin and mitochondria. Disrupting ROCK activity by RNAi or an inhibitor resulted in cell cycle progression and polar body extrusion failure. Time-lapse microscopy showed that this may have been due to spindle migration and cytokinesis defects, as chromosomes segregated but failed to extrude a polar body and then realigned. Actin expression at oocyte membranes and in cytoplasm was significantly decreased after these treatments. Actin caps were also disrupted, which was confirmed by a failure to form cortical granule-free domains. The mitochondrial distribution was also disrupted, which indicated that mitochondria were involved in the ROCK-mediated actin assembly. In addition, the phosphorylation levels of Cofilin, a downstream molecule of ROCK, decreased after disrupting ROCK activity. Thus, our results indicated that a ROCK-Cofilinactin pathway regulated meiotic spindle migration and cytokinesis during mouse oocyte maturation.
机译:在卵母细胞减数分裂期间,纺锤体在中央细胞质中形成并迁移到皮质。随后,卵母细胞挤出一个小身体,形成高度极化的卵;该过程主要由肌动蛋白调节。 ROCK是一种Rho-GTPase效应子,参与多种细胞功能,例如应激纤维形成,细胞迁移,肿瘤细胞侵袭和细胞运动。在这项研究中,我们调查了ROCK在小鼠卵母细胞减数分裂中的可能作用。 ROCK在生小泡破裂后定位在纺锤体周围,并与胞质肌动蛋白和线粒体共定位。 RNAi或抑制剂破坏ROCK活性导致细胞周期进程和极体挤压失败。延时显微镜显示,这可能是由于纺锤体迁移和胞质分裂缺陷所致,因为染色体分离但未能挤出极体然后重新排列。这些处理后,在卵母细胞膜和细胞质中的肌动蛋白表达显着降低。肌动蛋白帽也被破坏,这是由于未能形成无皮质颗粒的结构域而证实的。线粒体分布也被破坏,这表明线粒体参与了ROCK介导的肌动蛋白组装。另外,在破坏ROCK活性之后,ROCK的下游分子Cofilin的磷酸化水平降低。因此,我们的结果表明,在小鼠卵母细胞成熟过程中,ROCK-Cofilinactin途径调节了减数分裂纺锤体的迁移和胞质分裂。

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