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.

Aging and Disease
|October 11, 2021
PubMed

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.