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.

Ebiomedicine
|July 29, 2019
PubMed
Abstract

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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