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Identification of methylated proteins in the yeast small ribosomal subunit: A role for SPOUT methyltransferases in protein arginine methylation

机译:酵母小核糖体亚基中甲基化蛋白质的鉴定:SPOUT甲基转移酶在蛋白质精氨酸甲基化中的作用

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We have characterized the posttranslational methylation of Rps2, Rps3, and Rps27a, three small ribosomal subunit proteins in the yeast Saccharomyces cerevisiae, using mass spectrometry and amino acid analysis. We found that Rps2 is substoichiometrically modified at arginine-10 by the Rmt1 methyltransferase. We demonstrated that Rps3 is stoichiometrically modified by ω- monomethylation at arginine-146 by mass spectrometric and site-directed mutagenic analyses. Substitution of alanine for arginine at position 146 is associated with slow cell growth, suggesting that the amino acid identity at this site may influence ribosomal function and/or biogenesis. Analysis of the three-dimensional structure of Rps3 in S. cerevisiae shows that arginine-146 makes contacts with the small subunit rRNA. Screening of deletion mutants encoding potential yeast methyltransferases revealed that the loss of the YOR021C gene results in the absence of methylation of Rps3. We demonstrated that recombinant Yor021c catalyzes ω-monomethylarginine formation when incubated with S-adenosylmethionine and hypomethylated ribosomes prepared from a YOR021C deletion strain. Interestingly, Yor021c belongs to the family of SPOUT methyltransferases that, to date, have only been shown to modify RNA substrates. Our findings suggest a wider role for SPOUT methyltransferases in nature. Finally, we have demonstrated the presence of a stoichiometrically methylated cysteine residue at position 39 of Rps27a in a zinc-cysteine cluster. The discovery of these three novel sites of protein modification within the small ribosomal subunit will now allow for an analysis of their functional roles in translation and possibly other cellular processes.
机译:我们已经表征了Rps2,Rps3和Rps27a,在酿酒酵母中三个小的核糖体亚基蛋白的翻译后甲基化,使用质谱和氨基酸分析。我们发现Rps2在Rt1甲基转移酶的精氨酸10亚化学计量修饰。我们证明,通过质谱和定点诱变分析,Rps3在精氨酸146上通过ω-单甲基化进行了化学计量修饰。 146位位置的丙氨酸取代精氨酸与缓慢的细胞生长有关,这表明该位点的氨基酸同一性可能影响核糖体功能和/或生物发生。酿酒酵母中Rps3的三维结构分析表明,精氨酸146与小亚基rRNA接触。编码潜在的酵母甲基转移酶的缺失突变体的筛选显示,YOR021C基因的缺失导致Rps3的甲基化缺失。我们证明了重组Yor021c与S-腺苷甲硫氨酸和由YOR021C缺失菌株制备的低甲基化核糖体孵育时催化ω-单甲基精氨酸的形成。有趣的是,Yor021c属于SPOUT甲基转移酶家族,迄今为止,仅被证明可修饰RNA底物。我们的发现表明,SPOUT甲基转移酶在自然界中具有更广泛的作用。最后,我们证明了锌半胱氨酸簇中Rps27a位置39上存在化学计量甲基化的半胱氨酸残基。现在,在核糖体小亚基中发现了这三个新的蛋白质修饰位点,将有助于分析它们在翻译和其他细胞过程中的功能。

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