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Updated: Apr 24, 2026

Characterization of pH-Dependent Reversible Self-Assembly of Amyloid Beta 1-40-Coated Gold Colloids
Published on: March 21, 2025
Dimerization process of amyloid-β(29-42) studied by the Hamiltonian replica-permutation molecular dynamics
Satoru G Itoh1, Hisashi Okumura
1Department of Theoretical and Computational Molecular Science, Institute for Molecular Science , Okazaki, Aichi 444-8585, Japan.
Abstract:
The amyloid-β peptides form amyloid fibrils which are associated with Alzheimer's disease. Amyloid-β(29-42) is its C-terminal fragment and a critical determinant of the amyloid formation rate. This fragment forms the amyloid fibril by itself. However, the fragment conformation in the fibril has yet to be determined. The oligomerization process including the dimerization process is also still unknown. The dimerization process corresponds to an early process of the amyloidogenesis. In order to investigate the dimerization process and conformations, we applied the Hamiltonian replica-permutation method, which is a better alternative to the Hamiltonian replica-exchange method, to two amyloid-β(29-42) molecules in explicit water solvent. At the first step of the dimerization process, two amyloid-β(29-42) molecules came close to each other and had intermolecular side chain contacts. When two molecules had the intermolecular side chain contacts, the amyloid-β(29-42) tended to have intramolecular secondary structures, especially β-hairpin structures. The two molecules had intermolecular β-bridge structures by coming much closer at the second step of the dimerization process. Formation of these intermolecular β-bridge structures was induced by the β-hairpin structures. The intermolecular β-sheet structures elongated at the final step. Structures of the amyloid-β(29-42) in the monomer and dimer states are also shown with the free-energy landscapes, which were obtained by performing efficient sampling in the conformational space in our simulations.
Insights
This study reveals how amyloid-β(29-42) peptides dimerize, forming crucial β-hairpin and β-bridge structures that initiate amyloid fibril formation in Alzheimer's disease.
Area of Science:
- Biochemistry
- Molecular Biology
- Neuroscience
Background:
- Amyloid fibrils, associated with Alzheimer's disease, are formed by amyloid-β peptides.
- Amyloid-β(29-42) is a key C-terminal fragment influencing fibril formation rate and can self-assemble into fibrils.
Purpose of the Study:
- To investigate the dimerization process and conformational changes of amyloid-β(29-42).
- To understand the early stages of amyloidogenesis at the molecular level.
Main Methods:
- Applied the Hamiltonian replica-permutation method to two amyloid-β(29-42) molecules in explicit water.
- Performed efficient conformational sampling to obtain free-energy landscapes.
Main Results:
- Observed initial intermolecular side chain contacts between amyloid-β(29-42) molecules.
- Identified the formation of intramolecular β-hairpin structures preceding intermolecular β-bridge formation.
- Demonstrated that β-hairpin structures induce intermolecular β-bridge and subsequent β-sheet elongation.
Conclusions:
- Elucidated the step-by-step dimerization mechanism of amyloid-β(29-42).
- Provided insights into the monomer and dimer structures and their associated free-energy landscapes.
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