4.8 Article

The cristae modulator Optic atrophy 1 requires mitochondrial ATP synthase oligomers to safeguard mitochondrial function

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NATURE COMMUNICATIONS
卷 9, 期 -, 页码 -

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NATURE PUBLISHING GROUP
DOI: 10.1038/s41467-018-05655-x

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资金

  1. AIRC
  2. Fondazione Umberto Veronesi Postdoctoral Fellowship
  3. Spanish Ministry of Economy, Industry and Competitiveness [IJCI-2015-26225, SAF2015-65633-R, SAF2015-71521-REDC]
  4. Telethon-Italy [GPP10005, GGP14187, GGP15091]
  5. AIRC Italy [IG-15748]
  6. ERC [FP7-282280]
  7. Italian Ministry of Research [FIRB RBAP11Z3YA_005]
  8. JST, CREST [JPMJCR13M4]
  9. Platform for Drug Design, Discovery and Development from MEXT, Japan
  10. MEXT, Japan [17H03647]
  11. MINECO
  12. Pro-CNIC Foundation
  13. SO-MINECO [SEV-2015-0505]
  14. FP7 CIG [PCIG13-GA-2013-618697]

向作者/读者索取更多资源

It is unclear how the mitochondrial fusion protein Optic atrophy 1 (OPA1), which inhibits cristae remodeling, protects from mitochondrial dysfunction. Here we identify the mitochondrial F1Fo-ATP synthase as the effector of OPA1 in mitochondrial protection. In OPA1 overexpressing cells, the loss of proton electrochemical gradient caused by respiratory chain complex III inhibition is blunted and this protection is abolished by the ATP synthase inhibitor oligomycin. Mechanistically, OPA1 and ATP synthase can interact, but recombinant OPA1 fails to promote oligomerization of purified ATP synthase reconstituted in liposomes, suggesting that OPA1 favors ATP synthase oligomerization and reversal activity by modulating cristae shape. When ATP synthase oligomers are genetically destabilized by silencing the key dimerization subunit e, OPA1 is no longer able to preserve mitochondrial function and cell viability upon complex III inhibition. Thus, OPA1 protects mitochondria from respiratory chain inhibition by stabilizing cristae shape and favoring ATP synthase oligomerization.

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