Lopez Sanchez M Isabel G, Cipullo Miriam, Gopalakrishna Shreekara, Khawaja Anas, Rorbach Joanna
Division of Molecular Metabolism, Department of Medical Biochemistry and Biophysics, Karolinska Institutet, Solna, Sweden.
Centre for Eye Research Australia, Melbourne, VIC, Australia.
Front Genet. 2020 Jul 17;11:761. doi: 10.3389/fgene.2020.00761. eCollection 2020.
Ribosomal RNA (rRNA) from all organisms undergoes post-transcriptional modifications that increase the diversity of its composition and activity. In mitochondria, specialized mitochondrial ribosomes (mitoribosomes) are responsible for the synthesis of 13 oxidative phosphorylation proteins encoded by the mitochondrial genome. Mitoribosomal RNA is also modified, with 10 modifications thus far identified and all corresponding modifying enzymes described. This form of epigenetic regulation of mitochondrial gene expression affects mitoribosome biogenesis and function. Here, we provide an overview on rRNA methylation and highlight critical work that is beginning to elucidate its role in mitochondrial gene expression. Given the similarities between bacterial and mitochondrial ribosomes, we focus on studies involving and human models. Furthermore, we highlight the use of state-of-the-art technologies, such as cryoEM in the study of rRNA methylation and its biological relevance. Understanding the mechanisms and functional relevance of this process represents an exciting frontier in the RNA biology and mitochondrial fields.
所有生物体的核糖体RNA(rRNA)都会经历转录后修饰,这增加了其组成和活性的多样性。在线粒体中,特殊的线粒体核糖体(线粒体核糖体)负责合成由线粒体基因组编码的13种氧化磷酸化蛋白。线粒体核糖体RNA也会被修饰,迄今为止已鉴定出10种修饰,并描述了所有相应的修饰酶。这种线粒体基因表达的表观遗传调控形式会影响线粒体核糖体的生物发生和功能。在这里,我们提供了rRNA甲基化的概述,并强调了一些关键研究,这些研究开始阐明其在线粒体基因表达中的作用。鉴于细菌核糖体和线粒体核糖体之间的相似性,我们重点关注涉及[具体内容缺失]和人类模型的研究。此外,我们强调了在rRNA甲基化及其生物学相关性研究中使用的最新技术,如冷冻电镜。了解这一过程的机制和功能相关性是RNA生物学和线粒体领域一个令人兴奋的前沿领域。