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Published on: September 18, 2013
Age-related metabolic changes limit efficacy of deoxynucleoside-based therapy in thymidine kinase 2-deficient mice
Cora Blázquez-Bermejo1, David Molina-Granada1, Ferran Vila-Julià1
1Research Group on Neuromuscular and Mitochondrial Disorders, Vall d'Hebron Institut de Recerca, Universitat Autònoma de Barcelona, Barcelona, Spain; Biomedical Network Research Centre on Rare Diseases (CIBERER), Instituto de Salud Carlos III, Madrid, Spain.
Background:
Thymidine kinase 2 (TK2) catalyses the phosphorylation of deoxythymidine (dThd) and deoxycytidine (dCtd) within mitochondria. TK2 deficiency leads to mtDNA depletion or accumulation of multiple deletions. In patients, TK2 mutations typically manifest as a rapidly progressive myopathy with infantile onset, leading to respiratory insufficiency and encephalopathy in the most severe clinical presentations. TK2-deficient mice develop the most severe form of the disease and die at average postnatal day 16. dThd+dCtd administration delayed disease progression and expanded lifespan of a knockin murine model of the disease.
Methods:
We daily administered TK2 knockout mice (Tk2KO) from postnatal day 4 with equimolar doses of dThd+dCtd, dTMP+dCMP, dThd alone or dCtd alone. We monitored body weight and survival and studied different variables at 12 or 29 days of age. We determined metabolite levels in plasma and target tissues, mtDNA copy number in tissues, and the expression and activities of enzymes with a relevant role in mitochondrial dNTP anabolism or catabolism.
Findings:
dThd+dCtd treatment extended average lifespan of Tk2KO mice from 16 to 34 days, attenuated growth retardation, and rescued mtDNA depletion in skeletal muscle and other target tissues of 12-day-old mice, except in brain. However, the treatment was ineffective in 29-day-old mice that still died prematurely. Bioavailability of dThd and dCtd markedly decreased during mouse development. Activity of enzymes catabolizing dThd and dCtd increased with age in small intestine. Conversely, the activity of the anabolic enzymes decreased in target tissues during mouse development. We also found that administration of dThd alone had the same impact on survival to that of dThd+dCtd, whereas dCtd alone had no influence on lifespan.
Interpretation:
dThd+dCtd treatment recruits alternative cytosolic salvage pathways for dNTP synthesis, suggesting that this therapy would be of benefit for any Tk2 mutation. dThd accounts for the therapeutic effect of the combined treatment in mice. During the first weeks after birth, mice experience marked tissue-specific metabolic regulations and ontogenetic changes in dNTP metabolism-related enzymes that limit therapeutic efficacy to early developmental stages. FUND: This study was funded by grants from the Spanish Ministry of Industry, Economy and Competitiveness, the Spanish Instituto de Salud Carlos III, the Fundación Inocente, Inocente, AFM Téléthon and the Generalitat de Catalunya. The disclosed funders had no role in study design, data collection and analysis, decision to publish, or preparation of the manuscript.
Insights
Administering deoxythymidine (dThd) and deoxycytidine (dCtd) to TK2-deficient mice extended lifespan and improved mtDNA depletion. However, therapeutic efficacy decreased with age due to metabolic changes.
Area of Science:
- Mitochondrial genetics and metabolism
- Biochemistry of nucleotide salvage pathways
- Animal models of genetic disease
Background:
- Thymidine kinase 2 (TK2) is crucial for mitochondrial DNA (mtDNA) synthesis, phosphorylating deoxythymidine (dThd) and deoxycytidine (dCtd).
- TK2 deficiency causes mtDNA depletion or deletions, leading to severe myopathy, respiratory insufficiency, and encephalopathy.
- TK2-deficient mice exhibit a severe phenotype, with premature death around postnatal day 16.
Purpose of the Study:
- To investigate the therapeutic potential of dThd+dCtd administration in a mouse model of TK2 deficiency.
- To determine the impact of age and metabolic changes on treatment efficacy.
- To elucidate the underlying mechanisms of therapeutic benefit and limitations.
Main Methods:
- TK2 knockout mice (Tk2KO) were treated daily with equimolar doses of dThd+dCtd, dTMP+dCMP, dThd alone, or dCtd alone from postnatal day 4.
- Mice were monitored for body weight and survival; various parameters were assessed at 12 or 29 days of age.
- Metabolite levels, mtDNA copy number, and enzyme activities related to dNTP metabolism were analyzed in plasma and tissues.
Main Results:
- Combined dThd+dCtd treatment extended median lifespan of Tk2KO mice from 16 to 34 days and rescued mtDNA depletion in most tissues by day 12.
- Treatment was ineffective in 29-day-old mice, indicating age-dependent limitations.
- Deoxythymidine (dThd) alone conferred the therapeutic benefit, while deoxycytidine (dCtd) alone had no effect; decreased dThd/dCtd bioavailability and altered enzyme activities contributed to reduced efficacy with age.
Conclusions:
- dThd+dCtd therapy, primarily driven by dThd, can rescue mtDNA depletion and extend survival in young Tk2KO mice by activating alternative cytosolic salvage pathways.
- Age-related metabolic shifts, including decreased bioavailability of dThd/dCtd and altered enzyme activities, limit the therapeutic window for this treatment.
- The findings suggest potential benefits for TK2 mutations but highlight the critical importance of early intervention during development.
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