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Author Spotlight: Decoding Mitochondrial Aging
Published on: June 30, 2023
Targeting Mitochondrial Network Disorganization is Protective in C. elegans Models of Huntington's Disease
Emily Machiela1, Paige D Rudich2,3, Annika Traa2,3
11Laboratory of Aging and Neurodegenerative Disease, Center for Neurodegenerative Science, Van Andel Research Institute, Grand Rapids MI 49503, USA.
Insights
Huntington's disease (HD) involves mitochondrial fragmentation. Targeting other genes to reduce this fragmentation, rather than disrupting the DRP-1 gene, can improve movement and restore mitochondrial health in HD worm models.
Area of Science:
- Neuroscience
- Genetics
- Cell Biology
Background:
- Huntington's disease (HD) is a neurodegenerative disorder linked to CAG repeat expansion in the HTT gene.
- Mitochondrial dysfunction is a suspected key factor in HD pathogenesis.
- Mitochondrial dynamics, including fission and fusion, play crucial roles in cellular health.
Purpose of the Study:
- To investigate the role of mitochondrial dynamics in Huntington's disease using C. elegans models.
- To identify potential therapeutic targets for HD by examining mitochondrial morphology and function.
Main Methods:
- Utilized C. elegans models expressing disease-length polyglutamine tracts to mimic HD.
- Analyzed mitochondrial morphology and network organization in muscle tissue.
- Manipulated the expression of mitochondrial fission/fusion genes, including DRP-1, and screened for protective genetic targets.
Main Results:
- HD models exhibited mitochondrial fragmentation and network disorganization, worsening with age and protein aggregation.
- Reducing DRP-1 levels had detrimental, dose-dependent effects on HD worm models.
- Targeting other genes to decrease mitochondrial fragmentation rescued movement deficits and restored normal mitochondrial morphology in HD worms.
- Identified pgp-3, F25B5.6, and alh-12 as genes that confer protection.
Conclusions:
- Disrupting mitochondrial fission via DRP-1 can be harmful in HD models.
- Decreasing mitochondrial fragmentation by targeting alternative genes offers a protective strategy for HD.
- This study reveals novel therapeutic targets for HD focused on enhancing mitochondrial health.
Abstract:
Huntington's disease (HD) is an adult-onset neurodegenerative disease caused by a trinucleotide CAG repeat expansion in the HTT gene. While the pathogenesis of HD is incompletely understood, mitochondrial dysfunction is thought to be a key contributor. In this work, we used C. elegans models to elucidate the role of mitochondrial dynamics in HD. We found that expression of a disease-length polyglutamine tract in body wall muscle, either with or without exon 1 of huntingtin, results in mitochondrial fragmentation and mitochondrial network disorganization. While mitochondria in young HD worms form elongated tubular networks as in wild-type worms, mitochondrial fragmentation occurs with age as expanded polyglutamine protein forms aggregates. To correct the deficit in mitochondrial morphology, we reduced levels of DRP-1, the GTPase responsible for mitochondrial fission. Surprisingly, we found that disrupting drp-1 can have detrimental effects, which are dependent on how much expression is decreased. To avoid potential negative side effects of disrupting drp-1, we examined whether decreasing mitochondrial fragmentation by targeting other genes could be beneficial. Through this approach, we identified multiple genetic targets that rescue movement deficits in worm models of HD. Three of these genetic targets, pgp-3, F25B5.6 and alh-12, increased movement in the HD worm model and restored mitochondrial morphology to wild-type morphology. This work demonstrates that disrupting the mitochondrial fission gene drp-1 can be detrimental in animal models of HD, but that decreasing mitochondrial fragmentation by targeting other genes can be protective. Overall, this study identifies novel therapeutic targets for HD aimed at improving mitochondrial health.
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