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Published on: May 5, 2023
MPV17 Loss Causes Deoxynucleotide Insufficiency and Slow DNA Replication in Mitochondria
Ilaria Dalla Rosa1, Yolanda Cámara2,3, Romina Durigon1
1MRC Mill Hill Laboratory, London, United Kingdom.
Abstract:
MPV17 is a mitochondrial inner membrane protein whose dysfunction causes mitochondrial DNA abnormalities and disease by an unknown mechanism. Perturbations of deoxynucleoside triphosphate (dNTP) pools are a recognized cause of mitochondrial genomic instability; therefore, we determined DNA copy number and dNTP levels in mitochondria of two models of MPV17 deficiency. In Mpv17 ablated mice, liver mitochondria showed substantial decreases in the levels of dGTP and dTTP and severe mitochondrial DNA depletion, whereas the dNTP pool was not significantly altered in kidney and brain mitochondria that had near normal levels of DNA. The shortage of mitochondrial dNTPs in Mpv17-/- liver slows the DNA replication in the organelle, as evidenced by the elevated level of replication intermediates. Quiescent fibroblasts of MPV17-mutant patients recapitulate key features of the primary affected tissue of the Mpv17-/- mice, displaying virtual absence of the protein, decreased dNTP levels and mitochondrial DNA depletion. Notably, the mitochondrial DNA loss in the patients' quiescent fibroblasts was prevented and rescued by deoxynucleoside supplementation. Thus, our study establishes dNTP insufficiency in the mitochondria as the cause of mitochondrial DNA depletion in MPV17 deficiency, and identifies deoxynucleoside supplementation as a potential therapeutic strategy for MPV17-related disease. Moreover, changes in the expression of factors involved in mitochondrial deoxynucleotide homeostasis indicate a remodeling of nucleotide metabolism in MPV17 disease models, which suggests mitochondria lacking functional MPV17 have a restricted purine mitochondrial salvage pathway.
Insights
Mitochondrial DNA depletion in MPV17 deficiency is caused by insufficient deoxynucleoside triphosphates (dNTPs). Supplementing deoxynucleosides can prevent and rescue this mitochondrial DNA loss, offering a potential therapy.
Area of Science:
- Mitochondrial biology
- Genetics
- Biochemistry
Background:
- MPV17 protein is crucial for mitochondrial inner membrane function.
- MPV17 dysfunction leads to mitochondrial DNA abnormalities and disease through an unknown mechanism.
- Deoxynucleoside triphosphate (dNTP) pool perturbations are linked to mitochondrial genomic instability.
Purpose of the Study:
- To investigate the mechanism behind MPV17 deficiency-related mitochondrial DNA abnormalities.
- To determine the role of dNTP levels in MPV17 deficiency.
- To explore deoxynucleoside supplementation as a therapeutic strategy.
Main Methods:
- Assessed mitochondrial DNA copy number and dNTP levels in Mpv17-ablated mice models.
- Analyzed quiescent fibroblasts from MPV17-mutant patients.
- Investigated the effect of deoxynucleoside supplementation on patient-derived cells.
Main Results:
- Mpv17-deficient mouse liver mitochondria showed decreased dGTP and dTTP levels, leading to severe mitochondrial DNA depletion.
- Kidney and brain mitochondria in Mpv17-deficient mice had normal DNA levels and dNTP pools.
- MPV17-mutant patient fibroblasts exhibited reduced dNTPs and mitochondrial DNA depletion, which was reversed by deoxynucleoside supplementation.
Conclusions:
- Mitochondrial dNTP insufficiency is the cause of mitochondrial DNA depletion in MPV17 deficiency.
- Deoxynucleoside supplementation is a potential therapeutic approach for MPV17-related diseases.
- MPV17 deficiency involves remodeling of nucleotide metabolism and a restricted mitochondrial purine salvage pathway.
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