4.6 Article

Overexpression of mitochondrial histidyl-tRNA synthetase restores mitochondrial dysfunction caused by a deafness-associated tRNAHis mutation

期刊

JOURNAL OF BIOLOGICAL CHEMISTRY
卷 295, 期 4, 页码 940-954

出版社

AMER SOC BIOCHEMISTRY MOLECULAR BIOLOGY INC
DOI: 10.1074/jbc.RA119.010998

关键词

hearing; transfer RNA (tRNA); mitochondrial respiratory chain complex; translation; mitochondrial membrane potential; mitochondrial DNA (mtDNA); reactive oxygen species (ROS); gene transfer; ATP; aminoacyl tRNA synthetase; aminoacylation; m; 12201T > C mutation; mitochondrial histidyl-tRNA synthetase; mitochondrial tRNA mutation; pathophysiology; deafness; rescue; oxidative phosphorylation system (OXPHOS)

资金

  1. Ministry of Science and Technology of Zhejiang Province [2018C03026]
  2. National Key Technologies R&D Program from the Ministry of Science and Technology of China [2014CB541704]
  3. National Natural Science Foundation of China [81330024, 31671305, 81470685, 81500804]
  4. Natural Science Foundation of Zhejiang Province, China [LY18C060003, LY18C050002]
  5. Science and Technology Bureau of Taizhou City, Zhejiang Province, China [1901ky78]

向作者/读者索取更多资源

The deafness-associated m.12201T>C mutation affects the A5-U68 base-pairing within the acceptor stem of mitochondrial tRNA(His). The primary defect in this mutation is an alteration in tRNA(His) aminoacylation. Here, we further investigate the molecular mechanism of the deafness-associated tRNA(His) 12201T>C mutation and test whether the overexpression of the human mitochondrial histidyl-tRNA synthetase gene (HARS2) in cytoplasmic hybrid (cybrid) cells carrying the m.12201T>C mutation reverses mitochondrial dysfunctions. Using molecular dynamics simulations, we demonstrate that the m.12201T>C mutation perturbs the tRNA(His) structure and function, supported by decreased melting temperature, conformational changes, and instability of mutated tRNA. We show that the m.12201T>C mutation-induced alteration of aminoacylation tRNA(His) causes mitochondrial translational defects and respiratory deficiency. We found that the transfer of HARS2 into the cybrids carrying the m.12201T>C mutation raises the levels of aminoacylated tRNA(His) from 56.3 to 75.0% but does not change the aminoacylation of other tRNAs. Strikingly, HARS2 overexpression increased the steady-state levels of tRNA(His) and of noncognate tRNAs, including tRNA(Ala), tRNA(Gln), tRNA(Glu), tRNA(Leu(UUR)), tRNA(Lys), and tRNA(Met), in cells bearing the m.12201T>C mutation. This improved tRNA metabolism elevated the efficiency of mitochondrial translation, activities of oxidative phosphorylation complexes, and respiration capacity. Furthermore, HARS2 overexpression markedly increased mitochondrial ATP levels and membrane potential and reduced production of reactive oxygen species in cells carrying the m.12201T>C mutation. These results indicate that HARS2 overexpression corrects the mitochondrial dysfunction caused by the tRNA(His) mutation. These findings provide critical insights into the pathophysiology of mitochondrial disease and represent a step toward improved therapeutic interventions for mitochondrial disorders.

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