Lactic acidemia in the pathogenesis of mice carrying mitochondrial DNA with a deletion
Emi Ogasawara1, Kazuto Nakada, Jun-Ichi Hayashi
1Graduate School of Life and Environmental Sciences, University of Tsukuba, 1-1-1 Tennoudai, Tsukuba, Ibaraki 305-8572, Japan.
Abstract:
Lactic acidemia is one manifestation of the mitochondrial diseases caused by pathogenic mutant mitochondrial DNA (mtDNA). However, little is known about its chronic effects in the progression of mitochondrial disease phenotypes. To obtain experimental evidence on this point, we used trans-mitochondrial model mice (mito-mice) heteroplasmic for wild-type and deleted mtDNA (DeltamtDNA). Mito-mice carrying predominantly DeltamtDNA showed mitochondrial respiration defects and the resultant disease phenotypes, including lactic acidemia; they also showed a decrease in mitochondrial biogenesis regulated by the peroxisome proliferative activated receptor gamma, coactivator 1 alpha (PGC1alpha)-mediated pathway, such as the expression of mitochondrial transcription factor A and mtDNA-encoded gene products and the control of mtDNA content. When the accelerated lactate production of these mito-mice was pharmacologically inhibited by sodium dichloroacetate (DCA), the decrease in mitochondrial biogenesis improved, thus leading to the relaxation of mitochondrial respiration defects and extension of life span. These results showed that chronic overproduction of lactate caused by metabolic adaptation in mitochondrial diseases further deconditioned mitochondrial function. Mitochondrial respiration defects in mitochondrial diseases are therefore induced not only directly by the presence of mutant mtDNA, but also by the chronic lactic acidemia. Our in vivo study also suggested that inhibition of chronic lactic acidemia is a potential strategy for treating some mitochondrial diseases.
Insights
Chronic lactic acidemia worsens mitochondrial disease by impairing mitochondrial function. Inhibiting lactate production in mice improved mitochondrial biogenesis and extended lifespan, suggesting a new therapeutic strategy.
Area of Science:
- Mitochondrial Biology
- Biochemistry
- Genetics
Background:
- Lactic acidemia is a known symptom of mitochondrial diseases caused by mutations in mitochondrial DNA (mtDNA).
- The chronic impact of lactic acidemia on mitochondrial disease progression remains poorly understood.
Purpose of the Study:
- To investigate the chronic effects of lactic acidemia on mitochondrial disease phenotypes.
- To explore the potential of inhibiting lactate production as a therapeutic strategy for mitochondrial diseases.
Main Methods:
- Utilized trans-mitochondrial model mice (mito-mice) heteroplasmic for wild-type and deleted mtDNA (DeltamtDNA).
- Assessed mitochondrial respiration, biogenesis (PGC1alpha pathway), and mtDNA content.
- Administered sodium dichloroacetate (DCA) to inhibit accelerated lactate production in mito-mice.
Main Results:
- Mice with high DeltamtDNA levels exhibited mitochondrial respiration defects, lactic acidemia, and decreased mitochondrial biogenesis.
- Pharmacological inhibition of lactate production with DCA improved mitochondrial biogenesis and respiration.
- DCA treatment led to an extended lifespan in the affected mito-mice.
Conclusions:
- Chronic lactic acidemia exacerbates mitochondrial dysfunction in mitochondrial diseases.
- Mitochondrial respiration defects are influenced by both mutant mtDNA and chronic lactic acidemia.
- Inhibiting chronic lactic acidemia presents a potential therapeutic avenue for certain mitochondrial disorders.
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