Atomic-level characterization of the ensemble of the Aβ(1-42) monomer in water using unbiased molecular dynamics

Nikolaos G Sgourakis1, Myrna Merced-Serrano, Christos Boutsidis

  • 1Department of Physics, Applied Physics and Astronomy, Rensselaer Polytechnic Institute, NY 12180, USA.

Insights

Alzheimer's disease-linked amyloid-beta (Aβ42) peptide adopts diverse conformations in water. Molecular dynamics simulations reveal key interactions driving these structural changes, crucial for understanding early disease stages.

Area of Science:

  • Biophysics
  • Computational Biology
  • Neuroscience

Background:

  • Amyloid-beta (Aβ42) is implicated in Alzheimer's disease pathogenesis.
  • Aβ42 exists as an ensemble of rapidly interconverting conformations in solution.
  • Understanding these conformations is key to elucidating early disease mechanisms.

Purpose of the Study:

  • To characterize the conformational ensemble of Aβ42 in explicit water using molecular dynamics.
  • To validate simulation results against experimental Nuclear Magnetic Resonance (NMR) data.
  • To identify key structural features and interactions governing Aβ42 conformational dynamics.

Main Methods:

  • Replica Exchange Molecular Dynamics (REMD) simulations of Aβ42 in water.
  • Calculation and comparison of J-coupling and Residual Dipolar Coupling (RDC) data.
  • Application of statistical learning techniques (Laplacian eigenmaps, spectral clustering) to analyze conformational space.

Main Results:

  • REMD simulations, after 60 ns/replica, accurately reproduced experimental NMR J-coupling and RDC data.
  • The ff99SB force field adequately sampled the conformational ensemble of Aβ42.
  • Statistical analysis revealed distinct conformational states and identified key interactions, like peptide termini contacts, differentiating them.

Conclusions:

  • The study provides an atomic-level description of Aβ42 conformational dynamics in solution.
  • Identified key interactions can guide the design of experimental probes for Aβ42 transitions.
  • This work contributes to understanding the initial steps of Aβ oligomerization and fibril formation relevant to Alzheimer's disease.

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