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核仁前体的有丝分裂后动力学由前 rRNA 加工驱动。

Post-mitotic dynamics of pre-nucleolar bodies is driven by pre-rRNA processing.

机构信息

Université de Toulouse, UPS, Laboratoire de Biologie Moléculaire Eucaryote, F-31000 Toulouse, France.

出版信息

J Cell Sci. 2012 Oct 1;125(Pt 19):4532-42. doi: 10.1242/jcs.106419. Epub 2012 Jul 5.

DOI:10.1242/jcs.106419
PMID:22767511
Abstract

Understanding the relationship between the topological dynamics of nuclear subdomains and their molecular function is a central issue in nucleus biology. Pre-nucleolar bodies (PNBs) are transient nuclear subdomains, which form at telophase and contain nucleolar proteins, snoRNPs and pre-ribosomal RNAs (pre-rRNAs). These structures gradually disappear in early G1 phase and are currently regarded as reservoirs of nucleolar factors that participate to post-mitotic reassembly of the nucleolus. Here, we provide evidence from fluorescence in situ hybridization and loss-of-function experiments in HeLa cells that PNBs are in fact active ribosome factories in which maturation of the pre-rRNAs transiting through mitosis resumes at telophase. We show that the pre-rRNA spacers are sequentially removed in PNBs when cells enter G1 phase, indicating regular pre-rRNA processing as in the nucleolus. Accordingly, blocking pre-rRNA maturation induces accumulation in PNBs of stalled pre-ribosomes characterised by specific pre-rRNAs and pre-ribosomal factors. The presence of pre-ribosomal particles in PNBs is corroborated by observation of these domains by correlative electron tomography. Most importantly, blocking pre-rRNA maturation also prevents the gradual disappearance of PNBs, which persist for several hours in the nucleoplasm. In a revised model, we propose that PNBs are autonomous extra-nucleolar ribosome maturation sites, whose orderly disassembly in G1 phase is driven by the maturation and release of their pre-ribosome content.

摘要

理解核亚域的拓扑动力学与其分子功能之间的关系是核生物学的核心问题。核仁前体(PNB)是短暂的核亚域,在末期形成,包含核仁蛋白、snoRNPs 和核糖体 RNA(rRNA)前体。这些结构在早期 G1 期逐渐消失,目前被认为是核仁因子的储备库,这些因子参与核仁的有丝分裂后重新组装。在这里,我们通过荧光原位杂交和 HeLa 细胞的功能丧失实验提供了证据,表明 PNB 实际上是活跃的核糖体工厂,其中通过有丝分裂转运的 pre-rRNA 的成熟在末期恢复。我们表明,当细胞进入 G1 期时,pre-rRNA 间隔物在 PNB 中被依次去除,表明核仁中存在正常的 pre-rRNA 加工。相应地,阻止 pre-rRNA 成熟会导致停滞的 pre-核糖体在 PNB 中积累,其特征是具有特定的 pre-rRNA 和 pre-核糖体因子。通过相关电子断层扫描观察这些结构域证实了 PNB 中存在 pre-核糖体颗粒。最重要的是,阻止 pre-rRNA 成熟也会阻止 PNB 的逐渐消失,它们在核质中持续存在数小时。在修订后的模型中,我们提出 PNB 是自主的核外核糖体成熟位点,其在 G1 期的有序解体是由其 pre-核糖体内容物的成熟和释放驱动的。

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