Modulation of Aβ 16-22 aggregation by glucose.

Phys Chem Chem Phys

Biophysics Program, Institute of Physical Science and Technology, University of Maryland, College Park, MD, USA.

Published: February 2024

AI Article Synopsis

  • The self-assembly of amyloid-beta peptides into fibrillar structures is linked to Alzheimer's disease, with recent research indicating a connection between Alzheimer's and type-2 diabetes.
  • In this study, researchers used molecular simulations to explore how varying concentrations of glucose affect the aggregation rates of Aβ peptides, finding that higher glucose levels boost aggregation without altering the overall structure of the peptides.
  • The simulations revealed that glucose molecules preferentially join the aggregate-water interface in a way that reduces the rotation of molecules, thus speeding up the aggregation process and suggesting a new thermodynamic pathway that influences Aβ aggregation alongside chemical cross-linking.

Article Abstract

The self-assembly of amyloid-beta (Aβ) peptides into fibrillar structures in the brain is a signature of Alzheimer's disease. Recent studies have reported correlations between Alzheimer's disease and type-2 diabetes. Structurally, hyperglycemia induces covalent protein crosslinkings by advanced glycation end products (AGE), which can affect the stability of Aβ oligomers. In this work, we leverage physics-based coarse-grained molecular simulations to probe alternate thermodynamic pathways that affect peptide aggregation propensities at varying concentrations of glucose molecules. Similar to previous experimental reports, our simulations show a glucose concentration-dependent increase in Aβ aggregation rates, without changes in the overall secondary structure content. We discovered that glucose molecules prefer partitioning onto the aggregate-water interface at a specific orientation, resulting in a loss of molecular rotational entropy. This effectively hastens the aggregation rates, as peptide self-assembly can reduce the available surface area for peptide-glucose interactions. This work introduces a new thermodynamic-driven pathway, beyond chemical cross-linking, that can modulate Aβ aggregation.

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Source
http://dx.doi.org/10.1039/d3cp04494gDOI Listing

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