4.8 Article

Bidirectional Ca2+-dependent control of mitochondrial dynamics by the Miro GTPase

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NATL ACAD SCIENCES
DOI: 10.1073/pnas.0808953105

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资金

  1. Estonian Science Foundation [7175]
  2. European Community [MTKD-CT-2004-517176]
  3. Swedish Cancer Society
  4. Swedish Research Council
  5. Italian Association for Cancer Research
  6. University of Ferrara
  7. Italian University Ministry
  8. EU
  9. Italian Space Agenc
  10. National Institutes of Health [1P01AG025532-01A1, DK51526, GM59419]
  11. Fondazione Telethon Funding Source: Custom

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Calcium oscillations suppress mitochondrial movements along the microtubules to support on-demand distribution of mitochondria. To activate this mechanism, Ca2+ targets a yet unidentified cytoplasmic factor that does not seem to be a microtubular motor or a kinase/phosphatase. Here, we have studied the dependence of mitochondrial dynamics on the Miro GTPases that reside in the mitochondria and contain two EF-hand Ca2+-binding domains, in H9c2 cells and primary neurons. At resting cytoplasmic [Ca2+]([Ca2+](c)), movements of the mitochondria were enhanced by Miro overexpression irrespective of the presence of the EF-hands. The Ca2+-induced arrest of mitochondrial motility was also promoted by Miro overexpression and was suppressed when either the Miro were depleted or their EF-hand was mutated. Miro also enhanced the fusion state of the mitochondria at resting [Ca2+] c but promoted mitochondrial fragmentation at high [Ca2+] c. These effects of Miro on mitochondrial morphology seem to involve Drp1 suppression and activation, respectively. In primary neurons, Miro also caused an increase in dendritic mitochondrial mass and enhanced mitochondrial calcium signaling. Thus, Miro proteins serve as a [Ca2+](c)- sensitive switch and bifunctional regulator for both the motility and fusion-fission dynamics of the mitochondria.

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