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The Dedicated Chaperone Acl4 Escorts Ribosomal Protein Rpl4 to Its Nuclear Pre-60S Assembly Site

机译:专用伴侣蛋白Acl4护送核糖体蛋白Rpl4至其60S之前的核装配位。

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摘要

Ribosomes are the highly complex macromolecular assemblies dedicated to the synthesis of all cellular proteins from mRNA templates. The main principles underlying the making of ribosomes are conserved across eukaryotic organisms and this process has been studied in most detail in the yeast Saccharomyces cerevisiae. Yeast ribosomes are composed of four ribosomal RNAs (rRNAs) and 79 ribosomal proteins (r-proteins). Most r-proteins need to be transported from the cytoplasm to the nucleus where they get incorporated into the evolving pre-ribosomal particles. Due to the high abundance and difficult physicochemical properties of r-proteins, their correct folding and fail-safe targeting to the assembly site depends largely on general, as well as highly specialized, chaperone and transport systems. Many r-proteins contain universally conserved or eukaryote-specific internal loops and/or terminal extensions, which were shown to mediate their nuclear targeting and association with dedicated chaperones in a growing number of cases. The 60S r-protein Rpl4 is particularly interesting since it harbours a conserved long internal loop and a prominent C-terminal eukaryote-specific extension. Here we show that both the long internal loop and the C-terminal eukaryote-specific extension are strictly required for the functionality of Rpl4. While Rpl4 contains at least five distinct nuclear localization signals (NLS), the C-terminal part of the long internal loop associates with a specific binding partner, termed Acl4. Absence of Acl4 confers a severe slow-growth phenotype and a deficiency in the production of 60S subunits. Genetic and biochemical evidence indicates that Acl4 can be considered as a dedicated chaperone of Rpl4. Notably, Acl4 localizes to both the cytoplasm and nucleus and it has the capacity to capture nascent Rpl4 in a co-translational manner. Taken together, our findings indicate that the dedicated chaperone Acl4 accompanies Rpl4 from the cytoplasm to its pre-60S assembly site in the nucleus.
机译:核糖体是高度复杂的大分子组装体,致力于从mRNA模板合成所有细胞蛋白。核糖体制造的基本原理在真核生物中得到了保守,酿酒酵母已对这一过程进行了最详细的研究。酵母核糖体由四个核糖体RNA(rRNA)和79个核糖体蛋白(r-蛋白)组成。大多数r蛋白需要从细胞质转运到细胞核,然后再掺入到不断发展的核糖体前颗粒中。由于R蛋白的丰度高和理化性质困难,它们正确的折叠和针对组装位点的故障安全定位在很大程度上取决于一般的以及高度专业化的分子伴侣和运输系统。许多r蛋白包含普遍保守的或真核生物特异的内部环和/或末端延伸,在越来越多的情况下,它们被证明可介导其核靶向作用以及与专用伴侣的结合。 60S r蛋白Rpl4特别有趣,因为它具有保守的长内环和突出的C端真核生物特异性延伸。在这里,我们显示Rpl4的功能严格要求长内环和C端真核生物特异性延伸。尽管Rpl4包含至少五个不同的核定位信号(NLS),但长内部环的C端部分与称为Acl4的特异性结合伴侣结合。 Acl4的缺乏赋予了严重的缓慢生长表型和60S亚基产生的不足。遗传和生化证据表明,Acl4可以被认为是Rpl4的专门伴侣。值得注意的是,Acl4定位于细胞质和细胞核,并且具有以共翻译的方式捕获新生Rpl4的能力。两者合计,我们的发现表明,专用伴侣蛋白Acl4伴随着Rpl4从细胞质到细胞核中60S之前的装配位点。

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