Fels Institute for Cancer Research and Molecular Biology, Temple University School of Medicine, Philadelphia, Pennsylvania 19140.
Genetics. 2013 Oct;195(2):349-58. doi: 10.1534/genetics.113.154005. Epub 2013 Jul 12.
In contrast to other species, localized maternal mRNAs are not believed to be prominent features of mammalian oocytes. We find by cDNA microarray analysis enrichment for maternal mRNAs encoding spindle and other proteins on the mouse oocyte metaphase II (MII) spindle. We also find that the key translational regulator, EIF4EBP1, undergoes a dynamic and complex spatially regulated pattern of phosphorylation at sites that regulate its association with EIF4E and its ability to repress translation. These phosphorylation variants appear at different positions along the spindle at different stages of meiosis. These results indicate that dynamic spatially restricted patterns of EIF4EBP1 phosphorylation may promote localized mRNA translation to support spindle formation, maintenance, function, and other nearby processes. Regulated EIF4EBP1 phosphorylation at the spindle may help coordinate spindle formation with progression through the cell cycle. The discovery that EIF4EBP1 may be part of an overall mechanism that integrates and couples cell cycle progression to mRNA translation and subsequent spindle formation and function may be relevant to understanding mechanisms leading to diminished oocyte quality, and potential means of avoiding such defects. The localization of maternal mRNAs at the spindle is evolutionarily conserved between mammals and other vertebrates and is also seen in mitotic cells, indicating that EIF4EBP1 control of localized mRNA translation is likely key to correct segregation of genetic material across cell types.
与其他物种不同,局部母源 mRNA 被认为不是哺乳动物卵母细胞的突出特征。我们通过 cDNA 微阵列分析发现,在小鼠卵母细胞中期 II(MII)纺锤体上,编码纺锤体和其他蛋白质的母源 mRNA 丰富。我们还发现,关键的翻译调节因子 EIF4EBP1 在调节其与 EIF4E 结合及其抑制翻译能力的位点上发生动态且复杂的空间调节的磷酸化模式。这些磷酸化变体在减数分裂的不同阶段在纺锤体的不同位置出现。这些结果表明,EIF4EBP1 磷酸化的动态空间限制模式可能促进局部 mRNA 翻译,以支持纺锤体的形成、维持、功能和其他附近过程。纺锤体上 EIF4EBP1 的调节性磷酸化可能有助于协调纺锤体的形成与细胞周期的进展。EIF4EBP1 可能是一种整体机制的一部分,该机制将细胞周期进展与 mRNA 翻译以及随后的纺锤体形成和功能整合并偶联起来,这可能与理解导致卵母细胞质量下降的机制以及避免此类缺陷的潜在方法有关。母源 mRNA 在纺锤体上的定位在哺乳动物和其他脊椎动物之间是保守的,在有丝分裂细胞中也可以看到,这表明 EIF4EBP1 对局部 mRNA 翻译的控制可能是正确分离细胞类型中遗传物质的关键。