Metabolite mapping reveals severe widespread perturbation of multiple metabolic processes in Huntington's disease

Stefano Patassini1, Paul Begley2, Jingshu Xu3

  • 1School of Biological Sciences, Faculty of Science, University of Auckland, Auckland, New Zealand; Centre for Brain Research and Department of Anatomy with Radiology, Faculty of Medical and Health Sciences, University of Auckland, Auckland, New Zealand; Centre for Advanced Discovery and Experimental Therapeutics (CADET), Central Manchester University Hospitals NHS Foundation Trust, Manchester Academic Health Sciences Centre, Manchester, UK; Institute of Human Development, Faculty of Medical and Human Sciences, The University of Manchester, Manchester, UK.

Insights

Huntington's disease (HD) disrupts brain metabolism, altering key metabolic pathways. This study reveals widespread metabolic changes in the brain, independent of the extent of neuropathological damage.

Area of Science:

  • Neuroscience
  • Metabolomics
  • Genetics

Background:

  • Huntington's disease (HD) is a genetic neurodegenerative disorder caused by a mutation in the Huntington's gene (HTT).
  • The precise mechanisms linking the causative mutation to neurodegeneration and brain dysfunction remain poorly understood.
  • Perturbations in brain metabolism are observed in HD, with mutant huntingtin protein (Htt) implicated as a potential driver.

Purpose of the Study:

  • To investigate the effects of Huntington's disease on brain metabolism.
  • To measure polar metabolite levels in eleven distinct brain regions exhibiting varying degrees of HD-related damage.

Main Methods:

  • A case-control study utilizing gas-chromatography/mass spectrometry-based metabolomic analysis.
  • Analysis of short post-mortem delay human brain tissue from nine HD patients and nine matched controls.
  • Quantification of 63 different metabolites across eleven brain regions per individual.

Main Results:

  • Significant alterations in regional brain metabolite abundances were observed in HD patients.
  • Changes were noted in key metabolic intermediates, including those in the tricarboxylic acid and urea cycles, and amino acid metabolism.
  • A complex metabolic phenotype was identified, extending beyond the observed neuropathological damage gradient.

Conclusions:

  • Huntington's disease leads to widespread disruption of brain metabolism.
  • Metabolic aberrations in HD are complex and may not solely correlate with the degree of neuropathological damage.
  • These findings provide insights into the metabolic underpinnings of HD pathogenesis.

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