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Updated: Aug 22, 2025

Reconstitution of Msp1 Extraction Activity with Fully Purified Components
Published on: August 10, 2021
Mitochondrial membrane proteins and VPS35 orchestrate selective removal of mtDNA
Ayesha Sen1, Sebastian Kallabis2, Felix Gaedke2
1Center for Physiology and Pathophysiology, Faculty of Medicine and University Hospital Cologne, University of Cologne, Cologne, Germany.
Abstract:
Understanding the mechanisms governing selective turnover of mutation-bearing mtDNA is fundamental to design therapeutic strategies against mtDNA diseases. Here, we show that specific mtDNA damage leads to an exacerbated mtDNA turnover, independent of canonical macroautophagy, but relying on lysosomal function and ATG5. Using proximity labeling and Twinkle as a nucleoid marker, we demonstrate that mtDNA damage induces membrane remodeling and endosomal recruitment in close proximity to mitochondrial nucleoid sub-compartments. Targeting of mitochondrial nucleoids is controlled by the ATAD3-SAMM50 axis, which is disrupted upon mtDNA damage. SAMM50 acts as a gatekeeper, influencing BAK clustering, controlling nucleoid release and facilitating transfer to endosomes. Here, VPS35 mediates maturation of early endosomes to late autophagy vesicles where degradation occurs. In addition, using a mouse model where mtDNA alterations cause impairment of muscle regeneration, we show that stimulation of lysosomal activity by rapamycin, selectively removes mtDNA deletions without affecting mtDNA copy number, ameliorating mitochondrial dysfunction. Taken together, our data demonstrates that upon mtDNA damage, mitochondrial nucleoids are eliminated outside the mitochondrial network through an endosomal-mitophagy pathway. With these results, we unveil the molecular players of a complex mechanism with multiple potential benefits to understand mtDNA related diseases, inherited, acquired or due to normal ageing.
Insights
Mitochondrial DNA (mtDNA) damage triggers a unique pathway for selective removal via endosomes and lysosomes, independent of macroautophagy. This discovery offers new therapeutic targets for mtDNA diseases and aging.
Area of Science:
- Cell Biology
- Mitochondrial Biology
- Molecular Medicine
Background:
- Selective turnover of damaged mitochondrial DNA (mtDNA) is crucial for preventing mtDNA diseases.
- Current understanding of mtDNA quality control mechanisms is incomplete.
Purpose of the Study:
- To elucidate the mechanisms of selective mtDNA turnover upon damage.
- To identify molecular players involved in eliminating mutation-bearing mtDNA.
Main Methods:
- Proximity labeling with Twinkle as a nucleoid marker.
- Analysis of the ATAD3-SAMM50 axis and endosomal trafficking.
- Utilizing a mouse model of mtDNA-induced muscle regeneration impairment.
- Investigating the effect of rapamycin on mtDNA deletions and mitochondrial function.
Main Results:
- mtDNA damage induces membrane remodeling and endosomal recruitment near nucleoids.
- The ATAD3-SAMM50 axis regulates nucleoid release and endosomal transfer.
- VPS35 mediates the maturation of endosomes into autophagosomes for degradation.
- Rapamycin selectively removes mtDNA deletions in a mouse model, improving muscle regeneration and mitochondrial function.
Conclusions:
- A novel endosomal-mitophagy pathway eliminates damaged mitochondrial nucleoids outside the mitochondrial network.
- This pathway relies on lysosomal function and ATG5, distinct from canonical macroautophagy.
- Targeting this pathway holds therapeutic potential for mtDNA-related diseases and aging-associated mitochondrial dysfunction.
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