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酵母前核糖体中Nop7亚复合物组装所需的Ytm1、Erb1和Nop7之间的相互作用。

Interactions among Ytm1, Erb1, and Nop7 required for assembly of the Nop7-subcomplex in yeast preribosomes.

作者信息

Tang Lan, Sahasranaman Aarti, Jakovljevic Jelena, Schleifman Erica, Woolford John L

机构信息

Department of Biological Sciences, Carnegie Mellon University, Pittsburgh, PA 15213, USA.

出版信息

Mol Biol Cell. 2008 Jul;19(7):2844-56. doi: 10.1091/mbc.e07-12-1281. Epub 2008 Apr 30.

DOI:10.1091/mbc.e07-12-1281
PMID:18448671
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2441677/
Abstract

In Saccharomyces cerevisiae, more than 180 assembly factors associate with preribosomes to enable folding of pre-rRNA, recruitment of ribosomal proteins, and processing of pre-rRNAs to produce mature ribosomes. To examine the molecular architecture of preribosomes and to connect this structure to functions of each assembly factor, assembly subcomplexes have been purified from preribosomal particles. The Nop7-subcomplex contains three assembly factors: Nop7, Erb1, and Ytm1, each of which is necessary for conversion of 27SA(3) pre-rRNA to 27SB(S) pre-rRNA. However, interactions among these three proteins and mechanisms of their recruitment and function in pre-rRNPs are poorly understood. Here we show that Ytm1, Erb1, and Nop7 assemble into preribosomes in an interdependent manner. We identified which domains within Ytm1, Erb1, and Nop7 are necessary for their interaction with each other and are sufficient for recruitment of each protein into preribosomes. Dominant negative effects on growth and ribosome biogenesis caused by overexpressing truncated Ytm1, Erb1, or Nop7 constructs, and recessive phenotypes of the truncated proteins revealed not only interaction domains but also other domains potentially important for each protein to function in ribosome biogenesis. Our data suggest a model for the architecture of the Nop7-subcomplex and provide potential functions of domains of each protein.

摘要

在酿酒酵母中,超过180种组装因子与前核糖体结合,以促进前体rRNA的折叠、核糖体蛋白的募集以及前体rRNA的加工,从而产生成熟的核糖体。为了研究前核糖体的分子结构,并将这种结构与每个组装因子的功能联系起来,已从前核糖体颗粒中纯化出组装亚复合物。Nop7亚复合物包含三种组装因子:Nop7、Erb1和Ytm1,它们各自对于将27SA(3)前体rRNA转化为27SB(S)前体rRNA都是必需的。然而,这三种蛋白质之间的相互作用以及它们在前体核糖体核糖核蛋白颗粒(pre-rRNPs)中的募集和功能机制仍知之甚少。在这里,我们表明Ytm1、Erb1和Nop7以相互依赖的方式组装成前核糖体。我们确定了Ytm1、Erb1和Nop7中的哪些结构域对于它们彼此之间的相互作用是必需的,并且足以将每种蛋白质募集到前核糖体中。过表达截短的Ytm1、Erb1或Nop7构建体对生长和核糖体生物合成产生的显性负效应,以及截短蛋白的隐性表型不仅揭示了相互作用结构域,还揭示了每种蛋白质在核糖体生物合成中发挥功能可能重要的其他结构域。我们的数据提出了一个Nop7亚复合物结构的模型,并提供了每种蛋白质结构域的潜在功能。

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