O-GlcNAc modification forces the formation of an α-Synuclein amyloid-strain with notably diminished seeding activity

Aaron T Balana1, Anne-Laure Mahul-Mellier2, Binh A Nguyen3

  • 1Department of Chemistry, University of Southern California, Los Angeles, CA 90089, United States.

Insights

O-GlcNAc modification of alpha-Synuclein forms distinct amyloid fibrils with reduced seeding activity, offering new therapeutic targets for Parkinson's disease and other neurodegenerative diseases.

Area of Science:

  • Neuroscience
  • Biochemistry
  • Structural Biology

Background:

  • Amyloid fibril formation is central to neurodegenerative diseases (NDDs) like Alzheimer's and Parkinson's.
  • Alpha-Synuclein and Tau proteins form distinct amyloid strains with varying toxicities and propagation patterns.
  • Understanding the structural basis of these strains is crucial for developing targeted diagnostics and therapies.

Approach:

  • Investigated the impact of O-GlcNAc modification on alpha-Synuclein monomer structure and amyloid fibril formation.
  • Utilized Cryo-Electron Microscopy (Cryo-EM) to determine the core structure of O-GlcNAc modified fibrils.
  • Assessed the seeding activity of modified fibrils in neuronal and rodent models of Parkinson's disease.

Key Points:

  • O-GlcNAc modification of alpha-Synuclein leads to amyloid fibrils with a distinct core structure.
  • These modified fibrils exhibit significantly diminished seeding activity in Parkinson's disease models.
  • In vitro studies suggest heat shock protein interactions with O-GlcNAc fibrils may inhibit seeding activity.

Conclusions:

  • Post-translational modifications, specifically O-GlcNAc, are critical determinants of alpha-Synuclein amyloid strain characteristics and pathogenicity.
  • O-GlcNAc modification represents a potential strategy to neutralize alpha-Synuclein's seeding activity, impacting NDD progression.
  • Findings may explain discrepancies between amyloid load and neurodegeneration severity in some NDDs.