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首页> 外文期刊>Cell cycle >Nek9 regulates spindle organization and cell cycle progression during mouse oocyte meiosis and its location in early embryo mitosis
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Nek9 regulates spindle organization and cell cycle progression during mouse oocyte meiosis and its location in early embryo mitosis

机译:Nek9调节小鼠卵母细胞减数分裂及其早期胚胎有丝分裂中的纺锤体组织和细胞周期进程。

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摘要

Nek9 (also known as Nercc1), a member of the NIMA (never in mitosis A) family of protein kinases, regulates spindle formation, chromosome alignment and segregation in mitosis. Here, we showed that Nek9 protein was expressed from germinal vesicle (GV) to metaphase II (MII) stages in mouse oocytes with no detectable changes. Confocal microscopy identified that Nek9 was localized to the spindle poles at the metaphase stages and associated with the midbody at anaphase or telophase stage in both meiotic oocytes and the first mitotic embyros. Depletion of Nek9 by specific morpholino injection resulted in severely defective spindles and misaligned chromosomes with significant pro-MI/MI arrest and failure of first polar body (PB1) extrusion. Knockdown of Nek9 also impaired the spindle-pole localization of γ-tubulin and resulted in retention of the spindle assembly checkpoint protein Bub3 at the kinetochores even after 10 h of culture. Live-cell imaging analysis also confirmed that knockdown of Nek9 resulted in oocyte arrest at the pro-MI/ MI stage with abnormal spindles, misaligned chromosomes and failed polar body emission. Taken together, our results suggest that Nek9 may act as a MTOC-associated protein regulating microtubule nucleation, spindle organization and, thus, cell cycle progression during mouse oocyte meiotic maturation, fertilization and early embryo cleavage.
机译:Nek9(也称为Nercc1)是NIMA(从未在有丝分裂A中)蛋白激酶家族的成员,它调节有丝分裂中的纺锤体形成,染色体排列和分离。在这里,我们显示了Nek9蛋白在小鼠卵母细胞中从生小泡(GV)到中期II(MII)阶段表达,没有可检测的变化。共聚焦显微镜检查发现,Nek9在减数分裂卵母细胞和第一个有丝分裂胚胎中均位于中期的纺锤体极,并在后期或末期与中体有关。通过特定的吗啉代注射耗尽Nek9会导致严重缺陷的纺锤体和染色体错位,并具有明显的pro-MI / MI阻滞和第一极体(PB1)挤出失败。敲除Nek9也会损害γ-微管蛋白的纺锤极定位,甚至在培养10小时后仍会在纺锤体保留纺锤体装配检查点蛋白Bub3。活细胞成像分析还证实,敲除Nek9会导致pro-MI / MI阶段的卵母细胞停滞,纺锤体异常,染色体未对准以及极体发射失败。两者合计,我们的结果表明Nek9可能作为MTOC相关蛋白,调节微管的成核,纺锤体组织,并因此在小鼠卵母细胞减数分裂成熟,受精和早期胚胎裂解过程中的细胞周期进程。

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