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RimP蛋白对30S核糖体亚基的成熟很重要。

The RimP protein is important for maturation of the 30S ribosomal subunit.

作者信息

Nord Stefan, Bylund Göran O, Lövgren J Mattias, Wikström P Mikael

机构信息

Department of Molecular Biology, Umeå University, SE-901 87 Umeå, Sweden.

出版信息

J Mol Biol. 2009 Feb 27;386(3):742-53. doi: 10.1016/j.jmb.2008.12.076. Epub 2009 Jan 6.

DOI:10.1016/j.jmb.2008.12.076
PMID:19150615
Abstract

The in vivo assembly of ribosomal subunits requires assistance by auxiliary proteins that are not part of mature ribosomes. More such assembly proteins have been identified for the assembly of the 50S than for the 30S ribosomal subunit. Here, we show that the RimP protein (formerly YhbC or P15a) is important for the maturation of the 30S subunit. A rimP deletion (DeltarimP135) mutant in Escherichia coli showed a temperature-sensitive growth phenotype as demonstrated by a 1.2-, 1.5-, and 2.5-fold lower growth rate at 30, 37, and 44 degrees C, respectively, compared to a wild-type strain. The mutant had a reduced amount of 70S ribosomes engaged in translation and showed a corresponding increase in the amount of free ribosomal subunits. In addition, the mutant showed a lower ratio of free 30S to 50S subunits as well as an accumulation of immature 16S rRNA compared to a wild-type strain, indicating a deficiency in the maturation of the 30S subunit. All of these effects were more pronounced at higher temperatures. RimP was found to be associated with free 30S subunits but not with free 50S subunits or with 70S ribosomes. The slow growth of the rimP deletion mutant was not suppressed by increased expression of any other known 30S maturation factor.

摘要

核糖体亚基的体内组装需要非成熟核糖体组成部分的辅助蛋白的协助。与30S核糖体亚基的组装相比,已鉴定出更多参与50S组装的此类组装蛋白。在这里,我们表明RimP蛋白(以前称为YhbC或P15a)对30S亚基的成熟很重要。大肠杆菌中的rimP缺失(DeltarimP135)突变体表现出温度敏感的生长表型,与野生型菌株相比,在30、37和44摄氏度下的生长速率分别降低了1.2倍、1.5倍和2.5倍。该突变体参与翻译的70S核糖体数量减少,游离核糖体亚基数量相应增加。此外,与野生型菌株相比,该突变体显示出游离30S与50S亚基的比例较低,以及未成熟16S rRNA的积累,表明30S亚基成熟存在缺陷。所有这些影响在较高温度下更为明显。发现RimP与游离30S亚基相关,但与游离50S亚基或70S核糖体无关。任何其他已知的30S成熟因子表达增加都不能抑制rimP缺失突变体的缓慢生长。

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