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Studying Mitochondrial Structure and Function in Drosophila Ovaries
Published on: January 4, 2017
Mitochondrial fusion is regulated by Reaper to modulate Drosophila programmed cell death
M Thomenius1, C D Freel, S Horn
1Department of Pharmacology and Cancer Biology, Duke University Medical Center, Durham, NC 27710, USA.
Abstract:
In most multicellular organisms, the decision to undergo programmed cell death in response to cellular damage or developmental cues is typically transmitted through mitochondria. It has been suggested that an exception is the apoptotic pathway of Drosophila melanogaster, in which the role of mitochondria remains unclear. Although IAP antagonists in Drosophila such as Reaper, Hid and Grim may induce cell death without mitochondrial membrane permeabilization, it is surprising that all three localize to mitochondria. Moreover, induction of Reaper and Hid appears to result in mitochondrial fragmentation during Drosophila cell death. Most importantly, disruption of mitochondrial fission can inhibit Reaper and Hid-induced cell death, suggesting that alterations in mitochondrial dynamics can modulate cell death in fly cells. We report here that Drosophila Reaper can induce mitochondrial fragmentation by binding to and inhibiting the pro-fusion protein MFN2 and its Drosophila counterpart dMFN/Marf. Our in vitro and in vivo analyses reveal that dMFN overexpression can inhibit cell death induced by Reaper or γ-irradiation. In addition, knockdown of dMFN causes a striking loss of adult wing tissue and significant apoptosis in the developing wing discs. Our findings are consistent with a growing body of work describing a role for mitochondrial fission and fusion machinery in the decision of cells to die.
Insights
Drosophila Reaper protein triggers programmed cell death by fragmenting mitochondria, a process crucial for cell survival. Inhibiting mitochondrial fusion proteins rescues this cell death.
Area of Science:
- Cell Biology
- Developmental Biology
- Genetics
Background:
- Mitochondria typically mediate programmed cell death in multicellular organisms.
- The role of mitochondria in Drosophila melanogaster apoptosis is not well understood.
- Drosophila IAP antagonists like Reaper can induce cell death, but their mitochondrial involvement is unclear.
Purpose of the Study:
- To investigate the role of mitochondria in Drosophila apoptosis.
- To determine how Drosophila Reaper influences mitochondrial dynamics.
- To elucidate the mechanism by which Reaper induces cell death.
Main Methods:
- In vitro and in vivo analyses of Drosophila Reaper and mitochondrial proteins.
- Mitochondrial fragmentation assays.
- Overexpression and knockdown studies of dMFN/Marf.
- γ-irradiation to induce cell death.
Main Results:
- Drosophila Reaper induces mitochondrial fragmentation by inhibiting the pro-fusion protein dMFN/Marf.
- Overexpression of dMFN inhibits Reaper-induced and γ-irradiation-induced cell death.
- Knockdown of dMFN leads to significant apoptosis and tissue loss in developing Drosophila wings.
Conclusions:
- Mitochondrial dynamics, specifically fission and fusion, play a critical role in regulating programmed cell death in Drosophila.
- Reaper's interaction with dMFN highlights a conserved mechanism linking mitochondrial morphology to apoptosis.
- These findings contribute to understanding the intricate control of cell death pathways.
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