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Methylation of yeast ribosomal protein Rpl3 promotes translational elongation fidelity

机译:酵母核糖体蛋白Rpl3的甲基化促进翻译延伸保真度

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摘要

Rpl3, a highly conserved ribosomal protein, is methylated at histidine 243 by the Hpm1 methyltransferase in Saccharomyces cerevisiae. Histidine 243 lies close to the peptidyl transferase center in a functionally important region of RpI3 designated as the basic thumb that coordinates the decoding, peptidyl transfer, and translocation steps of translation elongation. Hpm1 was recently implicated in ribosome biogenesis and translation. However, the biological role of methylation of its Rpl3 substrate has not been identified. Here we interrogate the role of Rpl3 methylation at H243 by investigating the functional impact of mutating this histidine residue to alanine (Rpl3-H243A). Akin to Hpm1-deficient cells, Rpl3-H243A cells accumulate 35S and 23S pre-rRNA precursors to a similar extent, confirming an important role for histidine methylation in pre-rRNA processing. In contrast, Hpm1-deficient cells but not Rpl3-H243A mutants show perturbed levels of ribosomal subunits. We show that Hpm1 has multiple substrates in different subcellular fractions, suggesting that methylation of proteins other than Rpl3 may be important for controlling ribosomal subunit levels. Finally, translational fidelity assays demonstrate that like Hpm1-deficient cells, Rpl3-H243A mutants have defects in translation elongation resulting in decreased translational accuracy. These data suggest that Rpl3 methylation at H243 is playing a significant role in translation elongation, likely via the basic thumb, but has little impact on ribosomal subunit levels. Hpm1 is therefore a multifunctional methyltransferase with independent roles in ribosome biogenesis and translation.
机译:Rpl3是一种高度保守的核糖体蛋白,在酿酒酵母中被Hpm1甲基转移酶在组氨酸243甲基化。组氨酸243位于RpI3的功能重要区域中,靠近肽基转移酶中心,RpI3被指定为基本拇指,该区域协调翻译延伸的解码,肽基转移和易位步骤。 Hpm1最近涉及核糖体的生物发生和翻译。然而,尚未确定其Rpl3底物的甲基化的生物学作用。在这里,我们通过研究将此组氨酸残基突变为丙氨酸(Rpl3-H243A)的功能影响,来研究R243在H243甲基化的作用。类似于Hpm1缺陷细胞,Rpl3-H243A细胞以相似的程度积聚35S和23S pre-rRNA前体,证实了组氨酸甲基化在pre-rRNA加工中的重要作用。相反,缺乏Hpm1的细胞却没有Rpl3-H243A突变体,其核糖体亚基水平受到干扰。我们表明,Hpm1在不同的亚细胞级分中具有多个底物,这表明除Rpl3以外的其他蛋白质的甲基化对于控制核糖体亚基水平可能很重要。最后,翻译保真度分析表明,像Hpm1缺陷型细胞一样,Rpl3-H243A突变体在翻译延伸中也有缺陷,导致翻译准确性降低。这些数据表明,H243处的Rpl3甲基化可能通过基本的拇指在翻译延伸中起重要作用,但对核糖体亚基水平影响很小。因此,Hpm1是在核糖体生物发生和翻译中具有独立作用的多功能甲基转移酶。

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