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Published on: May 5, 2023
Defects in maintenance of mitochondrial DNA are associated with intramitochondrial nucleotide imbalances
Neil Ashley1, Susan Adams, Abdelhamid Slama
1Mitochondrial Genetics Group, Nuffield Department of Obstetrics and Gynaecology, Level 3, Women's Centre,The John Radcliffe Hospital, Oxford OX3 9DU, UK.
Abstract:
Defects in mtDNA maintenance range from fatal multisystem childhood diseases, such as Alpers syndrome, to milder diseases in adults, including mtDNA depletion syndromes (MDS) and familial progressive external ophthalmoplegia (AdPEO). Most are associated with defects in genes involved in mitochondrial deoxynucleotide metabolism or utilization, such as mutations in thymidine kinase 2 (TK2) as well as the mtDNA replicative helicase, Twinkle and gamma polymerase (POLG). We have developed an in vitro system to measure incorporation of radiolabelled dNTPs into mitochondria of saponin permeabilized cells. We used this to compare the rates of mtDNA synthesis in cells from 12 patients with diseases of mtDNA maintenance. We observed reduced incorporation of exogenous alpha (32)P-dTTP in fibroblasts from a patient with Alpers syndrome associated with the A467T substitution in POLG, a patient with dGK mutations, and a patient with mtDNA depletion of unknown origin compared to controls. However, incorporation of alpha (32)P-dTTP relative to either cell doubling time or alpha (32)P-dCTP incorporation was increased in patients with thymidine kinase deficiency or PEO as the result of TWINKLE mutations compared with controls. The specific activity of newly synthesized mtDNA depends on the size of the endogenous pool diluting the exogenous labelled nucleotide. Our result is consistent with a deficiency in the intramitochondrial pool of dTTP relative to dCTP in cells from patients with TK2 deficiency and TWINKLE mutations. Such DNA precursor asymmetry could cause pausing of the replication complex and hence exacerbate the propensity for age-related mtDNA mutations. Because deviations from the normal concentrations of dNTPs are known to be mutagenic, we suggest that intramitochondrial nucleotide imbalance could underlie the multiple mtDNA mutations observed in these patients.
Insights
Mitochondrial DNA (mtDNA) maintenance defects cause severe diseases. Nucleotide imbalances within mitochondria, particularly in thymidine kinase 2 (TK2) and TWINKLE mutations, may drive mtDNA mutations and disease progression.
Area of Science:
- Mitochondrial biology
- Genetics
- Biochemistry
Background:
- Defects in mitochondrial DNA (mtDNA) maintenance lead to severe childhood and adult diseases.
- Mutations in genes like thymidine kinase 2 (TK2), Twinkle, and gamma polymerase (POLG) are implicated in mtDNA disorders.
- These genes are crucial for mitochondrial deoxynucleotide metabolism and mtDNA replication.
Purpose of the Study:
- To investigate the rates of mtDNA synthesis in patients with various mtDNA maintenance diseases.
- To explore the role of deoxynucleotide triphosphate (dNTP) pools in mtDNA integrity and disease pathogenesis.
- To establish an in vitro system for measuring dNTP incorporation into mtDNA.
Main Methods:
- Developed an in vitro system using saponin-permeabilized cells to measure radiolabeled dNTP incorporation into mitochondria.
- Compared mtDNA synthesis rates in fibroblasts from 12 patients with mtDNA maintenance diseases and controls.
- Analyzed the incorporation of alpha (32)P-dTTP relative to cell doubling time and alpha (32)P-dCTP incorporation.
Main Results:
- Reduced incorporation of alpha (32)P-dTTP was observed in patients with Alpers syndrome (POLG mutation), dGK mutations, and unknown mtDNA depletion.
- Increased incorporation of alpha (32)P-dTTP relative to alpha (32)P-dCTP was found in patients with thymidine kinase deficiency (TK2) and PEO (TWINKLE mutations).
- Results suggest a dTTP deficiency relative to dCTP in patients with TK2 and TWINKLE mutations.
Conclusions:
- Intramitochondrial nucleotide imbalance, specifically dTTP deficiency, may underlie mtDNA maintenance defects in certain patient groups.
- Such nucleotide asymmetry can lead to replication pausing and exacerbate age-related mtDNA mutations.
- Suggests that intramitochondrial nucleotide imbalance is a potential mechanism contributing to multiple mtDNA mutations observed in these patients.
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