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Published on: October 5, 2012
Bax/Bak-dependent release of DDP/TIMM8a promotes Drp1-mediated mitochondrial fission and mitoptosis during programmed
Damien Arnoult1, Neggy Rismanchi, Alain Grodet
1Cellular Neurology Unit, Surgical Neurology Branch, National Institute of Neurological Disorders and Stroke, National Institutes of Health, Bethesda, Maryland 20892, USA.
Abstract:
Mitochondrial morphology within cells is controlled by precisely regulated rates of fusion and fission . During programmed cell death (PCD), mitochondria undergo extensive fragmentation and ultimately caspase-independent elimination through a process known as mitoptosis . Though this increased fragmentation is due to increased fission through the recruitment of the dynamin-like GTPase Drp1 to mitochondria , as well as to a block in mitochondrial fusion , cellular mechanisms underlying these processes remain unclear. Here, we describe a mechanism for the increased mitochondrial Drp1 levels and subsequent stimulation of mitochondrial fission seen during PCD. We observed Bax/Bak-mediated release of DDP/TIMM8a, a mitochondrial intermembrane space (IMS) protein , into the cytoplasm, where it binds to and promotes the mitochondrial redistribution of Drp1, a mediator of mitochondrial fission. Using both loss- and gain-of-function assays, we also demonstrate that the Drp1- and DDP/TIMM8a-dependent mitochondrial fragmentation observed during PCD is an important step in mitoptosis, which in turn is involved in caspase-independent cell death. Thus, following Bax/Bak-mediated mitochondrial outer membrane permeabilization (MOMP), IMS proteins released comprise not only apoptogenic factors such as cytochrome c involved in caspase activation but also DDP/TIMM8a, which activates Drp1-mediated fission to promote mitochondrial fragmentation and subsequently elimination during PCD.
Insights
During programmed cell death (PCD), DDP/TIMM8a release triggers mitochondrial fission via Drp1, promoting caspase-independent cell death and elimination through mitoptosis.
Area of Science:
- Cell Biology
- Mitochondrial Dynamics
- Programmed Cell Death
Background:
- Mitochondrial morphology is regulated by fusion and fission dynamics.
- Programmed cell death (PCD) involves mitochondrial fragmentation and elimination (mitoptosis).
- Mechanisms driving mitochondrial fission during PCD remain largely unknown.
Purpose of the Study:
- To elucidate the mechanism of increased mitochondrial fission during PCD.
- To identify cellular players regulating Drp1 activity and mitochondrial fragmentation in PCD.
Main Methods:
- Investigated Bax/Bak-mediated release of intermembrane space (IMS) proteins.
- Utilized loss- and gain-of-function assays.
- Examined the role of DDP/TIMM8a and Drp1 in mitochondrial fragmentation during PCD.
Main Results:
- Bax/Bak-mediated release of DDP/TIMM8a from the mitochondrial IMS into the cytoplasm was observed.
- DDP/TIMM8a binds to and promotes the mitochondrial localization of Drp1, a key fission mediator.
- Drp1 and DDP/TIMM8a-dependent mitochondrial fragmentation is crucial for mitoptosis.
Conclusions:
- DDP/TIMM8a release upon mitochondrial outer membrane permeabilization (MOMP) activates Drp1-mediated mitochondrial fission.
- This process drives mitochondrial fragmentation and elimination during PCD.
- Mitoptosis, involving DDP/TIMM8a and Drp1, contributes to caspase-independent cell death.
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