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Interactions with and Membrane Permeabilization of Brain Mitochondria by Amyloid Fibrils
Published on: September 28, 2019
Molecular dynamics simulations reveal the importance of amyloid-beta oligomer β-sheet edge conformations in membrane
Dirk Matthes1, Bert L de Groot1
1Computational Biomolecular Dynamics Group, Department of Theoretical and Computational Biophysics, Max Planck Institute for Multidisciplinary Sciences, Göttingen, Germany.
Abstract:
Oligomeric aggregates of the amyloid-beta peptide(1-42) (Aβ42) are regarded as a primary cause of cytotoxicity related to membrane damage in Alzheimer's disease. However, a dynamical and structural characterization of pore-forming Aβ42 oligomers at atomic detail has not been feasible. Here, we used Aβ42 oligomer structures previously determined in a membrane-mimicking environment as putative model systems to study the pore formation process in phospholipid bilayers with all-atom molecular dynamics simulations. Multiple Aβ42 oligomer sizes, conformations, and N-terminally truncated isoforms were investigated on the multi-μs time scale. We found that pore formation and ion permeation occur via edge conductivity and exclusively for β-sandwich structures that feature exposed side-by-side β-strand pairs formed by residues 9 to 21 of Aβ42. The extent of pore formation and ion permeation depends on the insertion depth of hydrophilic residues 13 to 16 (HHQK domain) and thus on subtle differences in the overall stability, orientation, and conformation of the aggregates in the membrane. Additionally, we determined that backbone carbonyl and polar side-chain atoms from the edge strands directly contribute to the coordination sphere of the permeating ions. Furthermore, point mutations that alter the number of favorable side-chain contacts correlate with the ability of the Aβ42 oligomer models to facilitate ion permeation in the bilayer center. Our findings suggest that membrane-inserted, layered β-sheet edges are a key structural motif in pore-forming Aβ42 oligomers independent of their size and play a pivotal role in aggregate-induced membrane permeabilization.
Insights
Alzheimer's disease involves amyloid-beta (Aβ42) oligomers forming pores. Molecular dynamics simulations reveal Aβ42 pore formation occurs via specific beta-sheet edges, facilitating ion permeation and membrane damage.
Area of Science:
- Biophysics
- Neuroscience
- Molecular Biology
Background:
- Oligomeric aggregates of amyloid-beta peptide (1-42) (Aβ42) are implicated in Alzheimer's disease pathogenesis.
- Aβ42-induced membrane damage and cytotoxicity are linked to pore formation, but atomic-level structural and dynamical details remain elusive.
Purpose of the Study:
- To characterize the pore formation process of Aβ42 oligomers in phospholipid bilayers at atomic detail.
- To investigate the structural and dynamical mechanisms underlying Aβ42-mediated ion permeation.
Main Methods:
- Utilized all-atom molecular dynamics simulations on the multi-microsecond timescale.
- Employed previously determined Aβ42 oligomer structures in membrane-mimicking environments as model systems.
- Investigated various Aβ42 oligomer sizes, conformations, and N-terminally truncated isoforms.
Main Results:
- Pore formation and ion permeation were exclusively observed for β-sandwich Aβ42 structures with exposed side-by-side β-strand pairs (residues 9-21).
- Ion permeation is mediated by "edge conductivity" and influenced by the insertion depth of the HHQK domain (residues 13-16).
- Backbone carbonyl and polar side-chain atoms of edge strands directly coordinate permeating ions, and mutations affecting side-chain contacts correlate with ion permeation ability.
Conclusions:
- Membrane-inserted, layered β-sheet edges represent a critical structural motif for pore-forming Aβ42 oligomers.
- This structural feature is crucial for aggregate-induced membrane permeabilization in Alzheimer's disease.
- Understanding these mechanisms provides insights into Aβ42 cytotoxicity and potential therapeutic targets.
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