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The disease-causing mutation p.F907I reveals a novel pathogenic mechanism for POLγ-related diseases
Direnis Erdinc1, Bertil Macao1, Sebastian Valenzuela1
1Department of Medical Biochemistry and Cell Biology, University of Gothenburg, Gothenburg SE-40530, Sweden.
Abstract:
Mutations in the catalytic domain of mitochondrial DNA polymerase γ (POLγ) cause a broad spectrum of clinical conditions. POLγ mutations impair mitochondrial DNA replication, thereby causing deletions and/or depletion of mitochondrial DNA, which in turn impair biogenesis of the oxidative phosphorylation system. We here identify a patient with a homozygous p.F907I mutation in POLγ, manifesting a severe clinical phenotype with developmental arrest and rapid loss of skills from 18 months of age. Magnetic resonance imaging of the brain revealed extensive white matter abnormalities, Southern blot of muscle mtDNA demonstrated depletion of mtDNA and the patient deceased at 23 months of age. Interestingly, the p.F907I mutation does not affect POLγ activity on single-stranded DNA or its proofreading activity. Instead, the mutation affects unwinding of parental double-stranded DNA at the replication fork, impairing the ability of the POLγ to support leading-strand DNA synthesis with the TWINKLE helicase. Our results thus reveal a novel pathogenic mechanism for POLγ-related diseases.
Insights
A novel mutation in mitochondrial DNA polymerase gamma (POLγ) caused severe disease by impairing DNA replication, leading to mitochondrial DNA depletion and early death in a young patient.
Area of Science:
- Genetics
- Molecular Biology
- Neuroscience
Background:
- Mutations in mitochondrial DNA polymerase gamma (POLγ) are linked to various diseases.
- POLγ is crucial for mitochondrial DNA replication and oxidative phosphorylation.
Observation:
- A patient with a homozygous p.F907I POLγ mutation presented with severe developmental arrest and neurological decline.
- Brain MRI showed white matter abnormalities, and muscle mtDNA analysis revealed depletion.
Findings:
- The p.F907I mutation impairs POLγ's ability to unwind double-stranded DNA at the replication fork.
- This defect hinders leading-strand DNA synthesis in conjunction with the TWINKLE helicase.
Implications:
- This study identifies a new mechanism of POLγ-related mitochondrial disease.
- Understanding this mechanism may guide future therapeutic strategies for mitochondrial disorders.
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