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Interaction network of the ribosome assembly machinery from a eukaryotic thermophile

机译:真核嗜热菌核糖体组装机械的相互作用网络

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摘要

Ribosome biogenesis in eukaryotic cells is a highly dynamic and complex process innately linked to cell proliferation. The assembly of ribosomes is driven by a myriad of biogenesis factors that shape pre‐ribosomal particles by processing and folding the ribosomal RNA and incorporating ribosomal proteins. Biochemical approaches allowed the isolation and characterization of pre‐ribosomal particles from Saccharomyces cerevisiae, which lead to a spatiotemporal map of biogenesis intermediates along the path from the nucleolus to the cytoplasm. Here, we cloned almost the entire set (∼180) of ribosome biogenesis factors from the thermophilic fungus Chaetomium thermophilum in order to perform an in‐depth analysis of their protein–protein interaction network as well as exploring the suitability of these thermostable proteins for structural studies. First, we performed a systematic screen, testing about 80 factors for crystallization and structure determination. Next, we performed a yeast 2‐hybrid analysis and tested about 32,000 binary combinations, which identified more than 1000 protein–protein contacts between the thermophilic ribosome assembly factors. To exemplary verify several of these interactions, we performed biochemical reconstitution with the focus on the interaction network between 90S pre‐ribosome factors forming the ctUTP‐A and ctUTP‐B modules, and the Brix‐domain containing assembly factors of the pre‐60S subunit. Our work provides a rich resource for biochemical reconstitution and structural analyses of the conserved ribosome assembly machinery from a eukaryotic thermophile.
机译:真核细胞中的核糖体生物发生是与细胞增殖固有相关的高度动态和复杂的过程。核糖体的组装是由无数的生物发生因子驱动的,这些生物发生因子通过加工和折叠核糖体RNA并掺入核糖体蛋白来形成核糖体前颗粒。生化方法可以从酿酒酵母中分离和鉴定核糖体前颗粒,从而导致沿着核仁到细胞质的生物生成中间体的时空图。在这里,我们从嗜热真菌嗜热Chaetomium thermophilum中克隆了几乎全部(〜180)核糖体生物发生因子,以便对其蛋白质-蛋白质相互作用网络进行深入分析,并探索这些热稳定蛋白质在结构上的适用性。学习。首先,我们进行了系统的筛选,测试了约80个结晶和结构确定因素。接下来,我们进行了酵母2杂交分析,并测试了约32,000种二元组合,这些组合确定了嗜热核糖体装配因子之间的1000多种蛋白质-蛋白质接触。为了示范验证其中的几种相互作用,我们进行了生化重建,重点是形成ctUTP-A和ctUTP-B模块的90S核糖体前因子与包含60S以前亚基的Brix结构域之间的相互作用网络。 。我们的工作为真核嗜热菌保守核糖体组装机械的生化重组和结构分析提供了丰富的资源。

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