Molecular dynamics analysis of the aggregation propensity of polyglutamine segments.
Protein misfolding and aggregation is a pathogenic feature shared among at least ten polyglutamine (polyQ) neurodegenerative diseases. While solvent-solution interaction is a key factor driving protein folding and aggregation, the solvation properties of expanded polyQ tracts are not well understood. By using GPU-enabled all-atom molecular dynamics simulations of polyQ monomers in an explicit solvent environment, this study shows that solvent-polyQ interaction propensity decreases as the lengths of polyQ tract increases. This study finds a predominance in long-distance interactions between residues far apart in polyQ sequences with longer polyQ segments, that leads to significant conformational differences. This study also indicates that large loops, comprised of parallel β-structures, appear in long polyQ tracts and present new aggregation building blocks with aggregation driven by long-distance intra-polyQ interactions. Finally, consistent with previous observations using coarse-grain simulations, this study demonstrates that there is a gain in the aggregation propensity with increased polyQ length, and that this gain is correlated with decreasing ability of solvent-polyQ interaction. These results suggest the modulation of solvent-polyQ interactions as a possible therapeutic strategy for treating polyQ diseases.
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Related Subject Headings
- Proteostasis Deficiencies
- Protein Structure, Secondary
- Protein Conformation, beta-Strand
- Protein Aggregation, Pathological
- Peptides
- Molecular Dynamics Simulation
- Hydrogen Bonding
- General Science & Technology
Citation
Published In
DOI
EISSN
Publication Date
Volume
Issue
Start / End Page
Location
Related Subject Headings
- Proteostasis Deficiencies
- Protein Structure, Secondary
- Protein Conformation, beta-Strand
- Protein Aggregation, Pathological
- Peptides
- Molecular Dynamics Simulation
- Hydrogen Bonding
- General Science & Technology