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CSN5/Jab1突变通过激活减数分裂检查点影响果蝇卵母细胞的轴形成。

CSN5/Jab1 mutations affect axis formation in the Drosophila oocyte by activating a meiotic checkpoint.

作者信息

Doronkin Sergey, Djagaeva Inna, Beckendorf Steven K

机构信息

Department of Molecular and Cell Biology, 401 Barker Hall, University of California, Berkeley 94720, USA.

出版信息

Development. 2002 Nov;129(21):5053-64. doi: 10.1242/dev.129.21.5053.

Abstract

The COP9 signalosome (CSN) is linked to signaling pathways and ubiquitin-dependent protein degradation in yeast, plant and mammalian cells, but its roles in Drosophila development are just beginning to be understood. We show that during oogenesis CSN5/JAB1, one subunit of the CSN, is required for meiotic progression and for establishment of both the AP and DV axes of the Drosophila oocyte. The EGFR ligand Gurken is essential for both axes, and our results show that CSN5 mutations block the accumulation of Gurken protein in the oocyte. CSN5 mutations also cause the modification of Vasa, which is known to be required for Gurken translation. This CSN5 phenotype - defective axis formation, reduced Gurken accumulation and modification of Vasa - is very similar to the phenotype of the spindle-class genes that are required for the repair of meiotic recombination-induced, DNA double-strand breaks. When these breaks are not repaired, a DNA damage checkpoint mediated by mei-41 is activated. Accordingly, the CSN5 phenotype is suppressed by mutations in mei-41 or by mutations in mei-W68, which is required for double strand break formation. These results suggest that, like the spindle-class genes, CSN5 regulates axis formation by checkpoint-dependent, translational control of Gurken. They also reveal a link between DNA repair, axis formation and the COP9 signalosome, a protein complex that acts in multiple signaling pathways by regulating protein stability.

摘要

COP9信号体(CSN)与酵母、植物和哺乳动物细胞中的信号通路以及泛素依赖性蛋白质降解有关,但其在果蝇发育中的作用才刚刚开始被了解。我们发现,在卵子发生过程中,CSN的一个亚基CSN5/JAB1是减数分裂进程以及果蝇卵母细胞前后轴和背腹轴建立所必需的。表皮生长因子受体(EGFR)配体Gurken对这两个轴的形成至关重要,我们的结果表明,CSN5突变会阻止Gurken蛋白在卵母细胞中的积累。CSN5突变还会导致Vasa的修饰,而Vasa是Gurken翻译所必需的。CSN5的这种表型——轴形成缺陷、Gurken积累减少以及Vasa修饰——与纺锤体类基因的表型非常相似,纺锤体类基因是修复减数分裂重组诱导的DNA双链断裂所必需的。当这些断裂未被修复时,由mei-41介导的DNA损伤检查点就会被激活。因此,CSN5的表型可被mei-41的突变或mei-W68的突变所抑制,mei-W68是双链断裂形成所必需的。这些结果表明,与纺锤体类基因一样,CSN5通过对Gurken进行检查点依赖性的翻译控制来调节轴的形成。它们还揭示了DNA修复、轴形成与COP9信号体之间的联系,COP9信号体是一种通过调节蛋白质稳定性在多种信号通路中起作用的蛋白质复合物。

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