Tischner Christin, Hofer Annette, Wulff Veronika, Stepek Joanna, Dumitru Iulia, Becker Lore, Haack Tobias, Kremer Laura, Datta Alexandre N, Sperl Wolfgang, Floss Thomas, Wurst Wolfgang, Chrzanowska-Lightowlers Zofia, De Angelis Martin Hrabe, Klopstock Thomas, Prokisch Holger, Wenz Tina
Institute for Genetics and Cluster of Excellence: Cellular Stress Responses in Aging-Associated Diseases (CECAD), University of Cologne, Zülpicher Str. 47A, Cologne 50674, Germany.
Department of Neurology, Friedrich-Baur-Institute, Ludwig-Maximilians-University, Munich 80336, Germany, German Mouse Clinic, Institute of Experimental Genetics.
Hum Mol Genet. 2015 Apr 15;24(8):2247-66. doi: 10.1093/hmg/ddu743. Epub 2014 Dec 30.
Mitochondrial diseases often exhibit tissue-specific pathologies, but this phenomenon is poorly understood. Here we present regulation of mitochondrial translation by the Mitochondrial Translation Optimization Factor 1, MTO1, as a novel player in this scenario. We demonstrate that MTO1 mediates tRNA modification and controls mitochondrial translation rate in a highly tissue-specific manner associated with tissue-specific OXPHOS defects. Activation of mitochondrial proteases, aberrant translation products, as well as defects in OXPHOS complex assembly observed in MTO1 deficient mice further imply that MTO1 impacts translation fidelity. In our mouse model, MTO1-related OXPHOS deficiency can be bypassed by feeding a ketogenic diet. This therapeutic intervention is independent of the MTO1-mediated tRNA modification and involves balancing of mitochondrial and cellular secondary stress responses. Our results thereby establish mammalian MTO1 as a novel factor in the tissue-specific regulation of OXPHOS and fine tuning of mitochondrial translation accuracy.
线粒体疾病常表现出组织特异性病理,但这种现象目前了解甚少。在此,我们提出线粒体翻译优化因子1(MTO1)对线粒体翻译的调控,它是这一情况中的一个新角色。我们证明,MTO1介导tRNA修饰,并以与组织特异性氧化磷酸化缺陷相关的高度组织特异性方式控制线粒体翻译速率。在MTO1缺陷小鼠中观察到的线粒体蛋白酶激活、异常翻译产物以及氧化磷酸化复合体组装缺陷,进一步表明MTO1影响翻译保真度。在我们的小鼠模型中,通过给予生酮饮食可以绕过与MTO1相关的氧化磷酸化缺陷。这种治疗干预独立于MTO1介导的tRNA修饰,涉及线粒体和细胞二级应激反应的平衡。因此,我们的结果确立了哺乳动物MTO1是氧化磷酸化组织特异性调控和线粒体翻译准确性微调中的一个新因子。