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Updated: Aug 30, 2026

Assessment of Mitochondrial Fission/Fusion Dynamics in Kidney Proximal Tubular Cells
Published on: November 14, 2025
Mitochondrial fission in apoptosis, neurodegeneration and aging
Ella Bossy-Wetzel1, Mark J Barsoum, Adam Godzik
1Del E. Webb Center for Neuroscience and Aging The Burnham Institute, 10901 North Torrey Pines Rd, La Jolla, CA 92037, USA. ebossy-wetzel@burnham.org
Abstract:
A decline in mitochondrial function is well recognized in neurodegenerative diseases and aging, and is thought to play a causal role in their biology. Unfortunately, the molecular basis underlying this detrimental loss in mitochondrial function remains mysterious. Interestingly, mitochondria undergo frequent fission and fusion. This process is regulated by molecular machinery that has been highly conserved during evolution, including dynamin-related GTPases that manifest opposing effects. A balance between mitochondrial fission and fusion events is required for normal mitochondrial and cellular function. Emerging evidence indicates that mitochondria undergo rapid and extensive fission at an early stage during apoptosis. A clue that these new findings are of significance for the pathogenesis of neurodegenerative disease is provided by the observation that OPA-1, a dynamin-related GTPase regulating mitochondrial fusion, is mutated in humans with dominant optic atrophy, which is characterized by degeneration of retinal ganglion cells and childhood blindness. Loss of function of OPA-1, analogous to deficiency of its yeast homologue, Mgm1p, is expected to lead to mitochondrial fission, loss of mitochondrial DNA, respiratory deficits and an increase in reactive oxygen species. Here we review the molecular mediators controlling mitochondrial fission and fusion, and how death effector molecules may hijack this ancient machinery. A shift in the rate of mitochondrial fission or fusion may provide a new mechanistic explanation for the mitochondrial dysfunction in neurodegenerative diseases and normal aging, and may offer a new target for therapeutic intervention.
Insights
Mitochondrial dysfunction is key in neurodegenerative diseases and aging. Regulating mitochondrial fission and fusion offers a new therapeutic target for these conditions.
Area of Science:
- Cell Biology
- Neuroscience
- Mitochondrial Biology
Background:
- Mitochondrial dysfunction is implicated in neurodegenerative diseases and aging.
- The molecular mechanisms driving this decline are not fully understood.
- Mitochondria undergo dynamic fission and fusion, regulated by conserved GTPases.
Purpose of the Study:
- To review the molecular mediators of mitochondrial fission and fusion.
- To explore how apoptosis machinery may interact with these mediators.
- To discuss the potential role of fission/fusion dynamics in neurodegeneration and aging.
Main Methods:
- Literature review of molecular mediators controlling mitochondrial dynamics.
- Analysis of the role of dynamin-related GTPases (e.g., OPA-1) in mitochondrial function.
- Examination of evidence linking mitochondrial fission/fusion to apoptosis and disease.
Main Results:
- Mitochondrial fission is prominent in early apoptosis.
- Mutations in OPA-1, a fusion regulator, cause dominant optic atrophy, linked to mitochondrial dysfunction.
- Dysregulation of fission/fusion balance is hypothesized to contribute to neurodegeneration and aging.
Conclusions:
- A shift in mitochondrial fission or fusion rates may explain mitochondrial dysfunction in neurodegenerative diseases and aging.
- Targeting the molecular machinery controlling mitochondrial dynamics presents a potential therapeutic strategy.
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