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首页> 外文期刊>Current Biology: CB >The F Box Protein Partner of Paired Regulates Stability of Drosophila Centromeric Histone H3, CenH3(CID)
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The F Box Protein Partner of Paired Regulates Stability of Drosophila Centromeric Histone H3, CenH3(CID)

机译:配对的F盒蛋白伴侣调节果蝇着丝粒组蛋白H3,CenH3(CID)的稳定性

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摘要

Centromere identity and function is determined by the specific localization of CenH3 (reviewed in [1-7]). Several mechanisms regulate centromeric CenH3 localization, including proteasome-mediated degradation that, both in budding yeast and Drosophila, regulates CenH3 levels and prevents promiscuous misincorporation throughout chromatin [8,9]. CenH3(CENP-A) proteolysis has also been reported in senescent human cells [10] or upon infection with herpes simplex virus 1 [11]. Little is known, however, about the actual mechanisms that regulate CenH3 proteolysis. Recent work in budding yeast identified Psh1 as an E3-ubiquitin ligase that mediates degradation of CenH3(Cse4P) [12,13], but E3-ligases regulating CenH3 stability in metazoans are unknown. Here, we report that the F box protein partner of paired (Ppa), which is a variable subunit of the main E3-ligase SCF [14-17], mediates CenH3(CID) stability in Drosophila. Our results show that Ppa depletion results in increased CenH3(CID) levels. Ppa physically interacts with CenH3(CID) through the CATD(CID) that, in the fly, mediates Ppa-dependent CenH3(CID) stability. Altogether, these results strongly suggest that, in Drosophila, SCFPpa regulates CenH3(CID) proteolysis. Interestingly, most known SCF complexes are inactive when, at mitosis, de novo CenH3(CID) deposition takes place at centromeres, suggesting that, in Drosophila, CenH3(CID) deposition and proteolysis are synchronized events.
机译:着丝粒身份和功能由CenH3的特定定位决定(在[1-7]中进行了综述)。有几种机制可调节着丝粒CenH3的定位,包括蛋白酶体介导的降解,其在发芽的酵母和果蝇中均可调节CenH3的水平并防止整个染色质的混杂混合[8,9]。 CenH3(CENP-A)蛋白水解也已在衰老的人类细胞中或在感染单纯疱疹病毒1时报道[11]。然而,很少有人了解调节CenH3蛋白水解的实际机制。在发芽酵母中的最新研究发现,Psh1是介导CenH3(Cse4P)降解的E3-泛素连接酶[12,13],但调节后生动物中CenH3稳定性的E3-连接酶尚不清楚。在这里,我们报道成对(Ppa)的F框蛋​​白伴侣是主要E3连接酶SCF的可变亚基[14-17],介导了果蝇中CenH3(CID)的稳定性。我们的结果表明,Ppa耗竭导致CenH3(CID)水平升高。 Ppa通过CATD(CID)与CenH3(CID)进行物理交互,而CATD(CID)在飞行中介导了Ppa依赖性CenH3(CID)的稳定性。总之,这些结果强烈表明,在果蝇中,SCFPpa调节CenH3(CID)蛋白水解。有趣的是,当在有丝分裂处着丝粒处发生新生CenH3(CID)沉积时,大多数已知的SCF复合物是无活性的,这表明在果蝇中CenH3(CID)沉积和蛋白水解是同步的。

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