首页> 美国卫生研究院文献>Genetics >Translation Initiation in Saccharomyces cerevisiae Mitochondria: Functional Interactions Among Mitochondrial Ribosomal Protein Rsm28p Initiation Factor 2 Methionyl-tRNA-Formyltransferase and Novel Protein Rmd9p
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Translation Initiation in Saccharomyces cerevisiae Mitochondria: Functional Interactions Among Mitochondrial Ribosomal Protein Rsm28p Initiation Factor 2 Methionyl-tRNA-Formyltransferase and Novel Protein Rmd9p

机译:酿酒酵母线粒体中的翻译起始:线粒体核糖体蛋白Rsm28p起始因子2甲硫酰-tRNA-甲酰基转移酶和新型蛋白Rmd9p之间的功能相互作用。

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摘要

Rsm28p is a dispensable component of the mitochondrial ribosomal small subunit in Saccharomyces cerevisiae that is not related to known proteins found in bacteria. It was identified as a dominant suppressor of certain mitochondrial mutations that reduced translation of the COX2 mRNA. To explore further the function of Rsm28p, we isolated mutations in other genes that caused a synthetic respiratory defective phenotype together with rsm28Δ. These mutations identified three nuclear genes: IFM1, which encodes the mitochondrial translation initiation factor 2 (IF2); FMT1, which encodes the methionyl-tRNA-formyltransferase; and RMD9, a gene of unknown function. The observed genetic interactions strongly suggest that the ribosomal protein Rsm28p and Ifm1p (IF2) have similar and partially overlapping functions in yeast mitochondrial translation initiation. Rmd9p, bearing a TAP-tag, was localized to mitochondria and exhibited roughly equal distribution in soluble and membrane-bound fractions. A small fraction of the Rmd9-TAP sedimented together with presumed monosomes, but not with either individual ribosomal subunit. Thus, Rmd9 is not a ribosomal protein, but may be a novel factor associated with initiating monosomes. The poorly respiring rsm28Δ, rmd9-V363I double mutant did not have a strong translation-defective phenotype, suggesting that Rmd9p may function upstream of translation initiation, perhaps at the level of localization of mitochondrially coded mRNAs.
机译:Rsm28p是酿酒酵母中线粒体核糖体小亚基的可有可无成分,与细菌中发现的已知蛋白质无关。它被确定为减少COX2 mRNA翻译的某些线粒体突变的主要抑制因子。为了进一步探索Rsm28p的功能,我们分离了其他基因中的突变,这些基因与rsm28Δ一起导致了合成呼吸缺陷型。这些突变确定了三个核基因:IFM1,它编码线粒体翻译起始因子2(IF2); IFM1,它编码线粒体翻译起始因子2(IF2)。 FMT1,编码甲硫氨酰-tRNA-甲酰基转移酶;和RMD9,一个功能未知的基因。观察到的遗传相互作用强烈暗示核糖体蛋白Rsm28p和Ifm1p(IF2)在酵母线粒体翻译起始中具有相似且部分重叠的功能。带有TAP标签的Rmd9p定位于线粒体,并在可溶性和膜结合部分中表现出大致相等的分布。 Rmd9-TAP的一小部分与假定的单核小体一起沉淀,但没有与单个核糖体亚基一起沉淀。因此,Rmd9不是核糖体蛋白,但可能是与启动单核糖体相关的新因子。呼吸困难的rsm28Δ,rmd9-V363I双突变体没有强的翻译缺陷表型,表明Rmd9p可能在翻译起始上游起作用,也许在线粒体编码mRNA的定位水平上。

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