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佩斯凯迪洛通过调节核糖体生物发生在植物细胞生长和存活中发挥重要作用。

Pescadillo plays an essential role in plant cell growth and survival by modulating ribosome biogenesis.

机构信息

Department of Systems Biology, Yonsei University, Seoul, 120-749, Korea.

出版信息

Plant J. 2013 Nov;76(3):393-405. doi: 10.1111/tpj.12302. Epub 2013 Aug 30.

Abstract

Pescadillo (PES) is involved in diverse cellular processes such as embryonic development, ribosomal biogenesis, cell proliferation, and gene transcription in yeast and metazoans. In this study, we characterized cellular functions of plant PES in Nicotiana benthamiana, Arabidopsis, and tobacco BY-2 cells. A GFP fusion protein of PES is predominantly localized in the nucleolus, where its localization requires the N-terminal domain of PES. Silencing of plant PES led to growth arrest and acute cell death. PES interacts with plant homologs of BOP1 and WDR12 in the nucleolus, which are also nucleolar proteins involved in ribosome biogenesis of yeast and mammals. PES, BOP1, and WDR12 cofractionated with ribosome subunits. Depletion of any of these proteins led to defective biogenesis of the 60S ribosome large subunits and disruption of nucleolar morphology. PES-deficient plant cells also exhibited delayed maturation of 25S ribosomal RNA and suppressed global translation. During mitosis in tobacco BY-2 cells, PES is associated with the mitotic microtubules, including spindles and phragmoplasts, and PES deficiency disrupted spindle organization and chromosome arrangement. Collectively, these results suggest that plant PES has an essential role in cell growth and survival through its regulation of ribosome biogenesis and mitotic progression.

摘要

PES 在酵母和后生动物中参与多种细胞过程,如胚胎发育、核糖体生物发生、细胞增殖和基因转录。在这项研究中,我们在本氏烟、拟南芥和烟草 BY-2 细胞中表征了植物 PES 的细胞功能。PES 的 GFP 融合蛋白主要定位于核仁,其定位需要 PES 的 N 端结构域。植物 PES 的沉默导致生长停滞和急性细胞死亡。PES 在核仁中与 BOP1 和 WDR12 的植物同源物相互作用,BOP1 和 WDR12 也是参与酵母和哺乳动物核糖体生物发生的核仁蛋白。PES、BOP1 和 WDR12 与核糖体亚基共分馏。这些蛋白质中的任何一种的耗竭都会导致 60S 核糖体大亚基的生物发生缺陷,并破坏核仁形态。PES 缺陷型植物细胞还表现出 25S 核糖体 RNA 成熟延迟和全局翻译受抑制。在烟草 BY-2 细胞的有丝分裂过程中,PES 与有丝分裂微管(包括纺锤体和胞质环)相关联,并且 PES 缺陷破坏了纺锤体的组织和染色体的排列。总之,这些结果表明,植物 PES 通过调节核糖体生物发生和有丝分裂进程,对细胞生长和存活具有重要作用。

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