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Published on: December 10, 2021
Accelerated expansion of pathogenic mitochondrial DNA heteroplasmies in Huntington's disease
Yiqin Wang1, Xiaoxian Guo1,2, Kaixiong Ye1
1Division of Nutritional Sciences, Cornell University, Ithaca, NY 14853.
Insights
Huntington's disease patients show increased harmful mitochondrial DNA (mtDNA) mutations that worsen with age and disease progression. Monitoring these mtDNA heteroplasmies may track disease decline and mitochondrial dysfunction.
Area of Science:
- Neuroscience
- Genetics
- Mitochondrial Biology
Background:
- Huntington's disease (HD) involves mitochondrial dysfunction in brain and peripheral tissues.
- Aging is a key risk factor for HD, impacting mitochondrial function.
- Mitochondrial DNA (mtDNA) heteroplasmies, the coexistence of mutated and wild-type mtDNA, can affect mitochondrial health.
Purpose of the Study:
- To investigate the role of mtDNA heteroplasmies in Huntington's disease.
- To determine if mtDNA heteroplasmy levels correlate with disease progression and severity.
- To explore the relationship between CAG repeat length, aging, and pathogenic mtDNA expansion in HD.
Main Methods:
- Utilized a sensitive mtDNA-targeted sequencing method.
- Analyzed lymphoblast and longitudinal blood samples from HD patients and healthy controls.
- Correlated mtDNA heteroplasmy fractions with clinical measures of HD severity and progression.
Main Results:
- HD patients exhibited a significantly higher fraction of pathogenic mtDNA heteroplasmies compared to controls.
- Increased pathogenic mtDNA heteroplasmies correlated with advanced HD stages, motor/cognitive decline, and reduced functional capacity.
- Elongated CAG repeats in the HTT gene promoted age-dependent expansion of pathogenic mtDNA heteroplasmies.
- Longitudinal analysis confirmed that expansion of pathogenic mtDNA heteroplasmies correlated with functional decline and worsening of motor/cognitive symptoms over 6 years.
Conclusions:
- HD is associated with an accelerated decline in mtDNA quality.
- Monitoring mtDNA heteroplasmies longitudinally offers a potential method to assess progressive mitochondrial dysfunction in HD.
- This approach may be valuable for understanding aging and age-related diseases.
Abstract:
Mitochondrial dysfunction is found in the brain and peripheral tissues of patients diagnosed with Huntington's disease (HD), an irreversible neurodegenerative disease of which aging is a major risk factor. Mitochondrial function is encoded by not only nuclear DNA but also DNA within mitochondria (mtDNA). Expansion of mtDNA heteroplasmies (coexistence of mutated and wild-type mtDNA) can contribute to age-related decline of mitochondrial function but has not been systematically investigated in HD. Here, by using a sensitive mtDNA-targeted sequencing method, we studied mtDNA heteroplasmies in lymphoblasts and longitudinal blood samples of HD patients. We found a significant increase in the fraction of mtDNA heteroplasmies with predicted pathogenicity in lymphoblasts from 1,549 HD patients relative to lymphoblasts from 182 healthy individuals. The increased fraction of pathogenic mtDNA heteroplasmies in HD lymphoblasts also correlated with advancing HD stages and worsened disease severity measured by HD motor function, cognitive function, and functional capacity. Of note, elongated CAG repeats in HTT promoted age-dependent expansion of pathogenic mtDNA heteroplasmies in HD lymphoblasts. We then confirmed in longitudinal blood samples of 169 HD patients that expansion of pathogenic mtDNA heteroplasmies was correlated with decline in functional capacity and exacerbation of HD motor and cognitive functions during a median follow-up of 6 y. The results of our study indicate accelerated decline of mtDNA quality in HD, and highlight monitoring mtDNA heteroplasmies longitudinally as a way to investigate the progressive decline of mitochondrial function in aging and age-related diseases.
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