Clemente Paula, Pajak Aleksandra, Laine Isabelle, Wibom Rolf, Wedell Anna, Freyer Christoph, Wredenberg Anna
Division of Metabolic Diseases, Department of Laboratory Medicine; Karolinska Institutet, Stockholm 17177, Sweden.
Center for Inherited Metabolic Diseases, Karolinska University Hospital, Stockholm 17176, Sweden.
Nucleic Acids Res. 2015 Sep 3;43(15):7398-413. doi: 10.1093/nar/gkv692. Epub 2015 Jul 7.
Mitochondrial gene expression is largely regulated by post-transcriptional mechanisms that control the amount and translation of each mitochondrial mRNA. Despite its importance for mitochondrial function, the mechanisms and proteins involved in mRNA turnover are still not fully characterized. Studies in yeast and human cell lines have indicated that the mitochondrial helicase SUV3, together with the polynucleotide phosphorylase, PNPase, composes the mitochondrial degradosome. To further investigate the in vivo function of SUV3 we disrupted the homolog of SUV3 in Drosophila melanogaster (Dm). Loss of dmsuv3 led to the accumulation of mitochondrial mRNAs, without increasing rRNA levels, de novo transcription or decay intermediates. Furthermore, we observed a severe decrease in mitochondrial tRNAs accompanied by an accumulation of unprocessed precursor transcripts. These processing defects lead to reduced mitochondrial translation and a severe respiratory chain complex deficiency, resulting in a pupal lethal phenotype. In summary, our results propose that SUV3 is predominantly required for the processing of mitochondrial polycistronic transcripts in metazoan and that this function is independent of PNPase.
线粒体基因表达在很大程度上受转录后机制调控,这些机制控制着每个线粒体mRNA的数量和翻译。尽管其对线粒体功能很重要,但参与mRNA周转的机制和蛋白质仍未完全明确。在酵母和人类细胞系中的研究表明,线粒体解旋酶SUV3与多核苷酸磷酸化酶PNPase共同构成线粒体降解体。为了进一步研究SUV3在体内的功能,我们破坏了果蝇(Dm)中SUV3的同源物。dmsuv3的缺失导致线粒体mRNA积累,而rRNA水平、从头转录或衰变中间体并未增加。此外,我们观察到线粒体tRNA严重减少,同时未加工的前体转录本积累。这些加工缺陷导致线粒体翻译减少和严重的呼吸链复合物缺陷,从而产生蛹致死表型。总之,我们的结果表明,SUV3是后生动物中线粒体多顺反子转录本加工所必需的,且该功能独立于PNPase。