Faculty of Biochemistry and Molecular Medicine, University of Oulu, Aapistie 7B, FIN-90220 Oulu, Finland.
Biocenter Oulu, Aapistie 5A, FIN-90220 Oulu, Finland.
Acta Crystallogr D Struct Biol. 2021 Jun 1;77(Pt 6):840-853. doi: 10.1107/S2059798321004149. Epub 2021 May 19.
The Saccharomyces cerevisiae Rsm22 protein (Sc-Rsm22), encoded by the nuclear RSM22 (systematic name YKL155c) gene, is a distant homologue of Rsm22 from Trypanosoma brucei (Tb-Rsm22) and METTL17 from mouse (Mm-METTL17). All three proteins have been shown to be associated with mitochondrial gene expression, and Sc-Rsm22 has been documented to be essential for mitochondrial respiration. The Sc-Rsm22 protein comprises a polypeptide of molecular weight 72.2 kDa that is predicted to harbor an N-terminal mitochondrial targeting sequence. The precise physiological function of Rsm22-family proteins is unknown, and no structural information has been available for Sc-Rsm22 to date. In this study, Sc-Rsm22 was expressed and purified in monomeric and dimeric forms, their folding was confirmed by circular-dichroism analyses and their low-resolution structures were determined using a small-angle X-ray scattering (SAXS) approach. The solution structure of the monomeric form of Sc-Rsm22 revealed an elongated three-domain arrangement, which differs from the shape of Tb-Rsm22 in its complex with the mitochondrial small ribosomal subunit in T. brucei (PDB entry 6sg9). A bioinformatic analysis revealed that the core domain in the middle (Leu117-Asp462 in Sc-Rsm22) resembles the corresponding region in Tb-Rsm22, including a Rossmann-like methyltransferase fold followed by a zinc-finger-like structure. The latter structure is not present in this position in other methyltransferases and is therefore a unique structural motif for this family. The first half of the C-terminal domain is likely to form an OB-fold, which is typically found in RNA-binding proteins and is also seen in the Tb-Rsm22 structure. In contrast, the N-terminal domain of Sc-Rsm22 is predicted to be fully α-helical and shares no sequence similarity with other family members. Functional studies demonstrated that the monomeric variant of Sc-Rsm22 methylates mitochondrial tRNAs in vitro. These data suggest that Sc-Rsm22 is a new and unique member of the RNA methyltransferases that is important for mitochondrial protein synthesis.
酿酒酵母 Rsm22 蛋白(Sc-Rsm22),由核基因 RSM22(系统命名为 YKL155c)编码,是与布氏锥虫(Tb-Rsm22)和小鼠 METTL17(Mm-METTL17)的 Rsm22 蛋白的远同源物。所有这三种蛋白质都与线粒体基因表达有关,并且已经证明 Sc-Rsm22 蛋白对于线粒体呼吸是必需的。Sc-Rsm22 蛋白由分子量为 72.2 kDa 的多肽组成,预计含有一个 N 端线粒体靶向序列。Rsm22 蛋白家族的精确生理功能尚不清楚,并且迄今为止尚无 Sc-Rsm22 的结构信息。在这项研究中,以单体和二聚体形式表达和纯化了 Sc-Rsm22 蛋白,并通过圆二色性分析确认了其折叠,还使用小角 X 射线散射(SAXS)方法确定了其低分辨率结构。单体形式的 Sc-Rsm22 的溶液结构显示出一个拉长的三结构域排列,这与在布氏锥虫中与线粒体小核糖体亚基形成复合物的 Tb-Rsm22 的形状不同(PDB 条目 6sg9)。生物信息学分析表明,中间的核心结构域(Sc-Rsm22 中的 Leu117-Asp462)类似于 Tb-Rsm22 中的相应区域,包括一个类似 Rossmann 的甲基转移酶折叠,其后是一个锌指样结构。该结构在其他甲基转移酶中不存在此位置,因此是该家族的独特结构基序。C 端结构域的前半部分可能形成一个 OB 折叠,通常在 RNA 结合蛋白中发现,也见于 Tb-Rsm22 结构中。相比之下,Sc-Rsm22 的 N 端结构域预计完全是α-螺旋结构,与其他家族成员没有序列相似性。功能研究表明,Sc-Rsm22 单体变体可在体外甲基化线粒体 tRNA。这些数据表明,Sc-Rsm22 是一种新的独特的 RNA 甲基转移酶成员,对于线粒体蛋白合成很重要。