Torchet C, Jacq C, Hermann-Le Denmat S
Laboratoire de Génétique Moléculaire, Ecole Normale Supérieure, URA C.N.R.S. 1302, Paris, France.
RNA. 1998 Dec;4(12):1636-52. doi: 10.1017/s1355838298981511.
The genetic depletion of yeast Rrp5p results in a synthesis defect of both 18S and 5.8S ribosomal RNAs (Venema J, Tollervey D. 1996. EMBO J 15:5701-5714). We have isolated the RRP5gene in a genetic approach aimed to select for yeast factors interfering with protein import into mitochondria. We describe here a striking feature of Rrp5p amino acid sequence, namely the presence of twelve putative S1 RNA-binding motifs and seven tetratricopeptide repeats (TPR) motifs. We have constructed two conditional temperature-sensitive alleles of RRP5 gene and analyzed them for associated rRNA-processing defects. First, a functional "bipartite gene" was generated revealing that the S1 and TPR parts of the protein can act independently of each other. We also generated a two amino acid deletion in TPR unit 1 (rrp5delta6 allele). The two mutant forms of Rrp5p were shown to cause a defect in 18S rRNA synthesis with no detectable effects on 5.8S rRNA production. However, the rRNA processing pathway was differently affected in each case. Interestingly, the ROK1 gene which, like RRP5, was previously isolated in a screen for synthetic lethal mutations with snR10 deletion, was here identified as a high copy suppressor of the rrp5delta6 temperature-sensitive allele. ROK1 also acts as a low copy suppressor but cannot bypass the cellular requirement for RRP5. Furthermore, we show that suppression by the Rok1p putative RNA helicase rescues the 18S rRNA synthesis defect caused by the rrp5delta6 mutation.
酵母Rrp5p的基因缺失会导致18S和5.8S核糖体RNA的合成缺陷(Venema J,Tollervey D. 1996. 《欧洲分子生物学组织杂志》15:5701 - 5714)。我们通过一种遗传方法分离出了RRP5基因,该方法旨在筛选干扰蛋白质导入线粒体的酵母因子。我们在此描述Rrp5p氨基酸序列的一个显著特征,即存在十二个假定的S1 RNA结合基序和七个四肽重复(TPR)基序。我们构建了RRP5基因的两个条件性温度敏感等位基因,并分析了它们相关的rRNA加工缺陷。首先,产生了一个功能性的“二分基因”,揭示该蛋白质的S1和TPR部分可以相互独立发挥作用。我们还在TPR单元1中产生了两个氨基酸的缺失(rrp5delta6等位基因)。结果表明,Rrp5p的这两种突变形式会导致18S rRNA合成缺陷,而对5.8S rRNA的产生没有可检测到的影响。然而,每种情况下rRNA加工途径受到的影响不同。有趣的是,ROK1基因,与RRP5一样,先前是在与snR10缺失的合成致死突变筛选中分离出来的,在这里被鉴定为rrp5delta6温度敏感等位基因的高拷贝抑制子。ROK1也作为低拷贝抑制子起作用,但不能绕过细胞对RRP5的需求。此外,我们表明由Rok1p假定的RNA解旋酶介导的抑制作用挽救了由rrp5delta6突变引起的18S rRNA合成缺陷。