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A deafness-associated mitochondrial DNA mutation altered the tRNA(Ser(UCN)) metabolism and mitochondrial function

机译:耳聋相关的线粒体DNA突变改变了TRNA(SER(UCN))代谢和线粒体功能

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摘要

Mutations in mitochondrial DNA (mtDNA) have been associated with deafness and their pathophysiology remains poorly understood. In this study, we investigated the pathogenic mechanism of deafness-associated 7505A > G variant in the mitochondrial tRNA(Ser(ucN)). The m.7505A > G variant affected the highly conserved adenine at position 11 (All), disrupted the highly conserved All-U24 base-pairing of DHU stem of tRNA(Ser(ucN)) and introduced a tertiary base pairing (G11-056) with the C56 in the PVC loop. We therefore hypothesized that the m.7505A > G variant altered both structure and function of tRNA(Ser(ucN)). We demonstrated that the m.7505A > G variant perturbed the conformation and stability of tRNA(Ser(ucN)), as indicated by an increased melting temperature and electrophoretic mobility of the mutated tRNA compared with the wild type molecule. Using the cybrids constructed by transferring mitochondria from the Chinese family into mitochondrial DNA (mtDNA)-less cells, we demonstrated the m.7505A > G variant led to significantly decreased steady-state levels of tRNA(Ser(ucN)) in the mutant cybrids, as compared with those of control cybrids. The aberrant tRNA(Ser(ucN)) metabolism resulted in the variable decreases in mtDNA-encoded polypeptides in the mutant cybrids. Furthermore, we demonstrated that the m.7505A > G variant decreased the activities of mitochondrial respiratory complexes I, III and IV, markedly diminished mitochondrial ATP levels and membrane potential, and increased the production of reactive oxygen species in the mutant cybrids. These results demonstrated that the m.7505A > G variant affected both structure and function of tRNA(Ser(ucN)) and consequently altered mitochondrial function. Our findings highlighted critical insights into the pathophysiology of maternally inherited deafness, which is manifested by the aberrant tRNA metabolism.
机译:线粒体DNA(MTDNA)中的突变与耳聋有关,并且它们的病理生理学仍然仍然明白。在这项研究中,我们研究了在线粒体TRNA中耳聋相关的7505A> G变体的致病机制(SER(UCN))。 M.7505A> G变体影响了11(全部)的高度保守的腺嘌呤,破坏了TRNA的DHU茎的高度保守的全U24碱基配对(SER(UCN))并引入了三级碱基配对(G11-056 )使用PVC环中的C56。因此,我们假设M.7505A> G变体改变了TRNA的结构和功能(SER(UCN))。我们证明了M.7505A> G变体扰动了TRNA(SER(UCN))的构象和稳定性,如通过突变的TRNA与野生型分子相比增加的熔化温度和电泳迁移率。使用通过将MitoChondria转移到MitocoChondria的胞胎中,我们证明了M.7505A> G变体LED在突变体糖中显着降低了稳态水平的TRNA(SER(UCN)) ,与控制缩款的人相比。异常的TRNA(SER(UCN))代谢导致变量在突变糖中的MTDNA编码的多肽中降低。此外,我们证明了M.7505A> G变体降低了线粒体呼吸络合物I,III和IV的活性,显着降低了线粒体ATP水平和膜电位,并增加了突变体糖的活性氧物质的产生。这些结果表明,M.7505A> G变体影响了TRNA的结构和功能(SER(UCN))并因此改变了线粒体功能。我们的调查结果强调了对母体遗传性耳聋的病理生理学的关键见解,这表现出异常的TRNA代谢。

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