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Technique for Intranasal Administration of α-Synuclein Aggregates
Published on: November 8, 2024
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.
Abstract:
The process of amyloid fibril formation remains one of the primary targets for developing diagnostics and treatments for several neurodegenerative diseases (NDDs). Amyloid-forming proteins such α-Synuclein and Tau, which are implicated in the pathogenesis of Alzheimer's and Parkinson's disease, can form different types of fibril structure, or strains, that exhibit distinct structures, toxic properties, seeding activities, and pathology spreading patterns in the brain. Therefore, understanding the molecular and structural determinants contributing to the formation of different amyloid strains or their distinct features could open new avenues for developing disease-specific diagnostics and therapies. In this work, we report that O-GlcNAc modification of α-Synuclein monomers results in the formation of amyloid fibril with distinct core structure, as revealed by Cryo-EM, and diminished seeding activity in seeding-based neuronal and rodent models of Parkinson's disease. Although the mechanisms underpinning the seeding neutralization activity of the O-GlcNAc modified fibrils remain unclear, our in vitro mechanistic studies indicate that heat shock proteins interactions with O-GlcNAc fibril inhibit their seeding activity, suggesting that the O-GlcNAc modification may alter the interactome of the α-Synuclein fibrils in ways that lead to reduce seeding activity in vivo. Our results show that post-translational modifications, such as O-GlcNAc modification, of α-Synuclein are key determinants of α-Synuclein amyloid strains and pathogenicity. These findings have significant implications for how we investigate and target amyloids in the brain and could possibly explain the lack of correlation between amyloid burden and neurodegeneration or cognitive decline in some subtypes of NDDs.
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.
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