Unveiling Medin Folding and Dimerization Dynamics and Conformations via Atomistic Discrete Molecular Dynamics

Fengjuan Huang1, Xinjie Fan2, Ying Wang2

  • 1Ningbo Institute of Innovation for Combined Medicine and Engineering (NIIME), Ningbo Medical Center Lihuili Hospital, Ningbo 315211, China.

Insights

Medin amyloid aggregation, linked to vascular disease, was studied using simulations. Key regions (medin30-41 and medin42-50) drive this process, offering targets for new inhibitors.

Area of Science:

  • Biochemistry and Molecular Biology
  • Cardiovascular Research
  • Structural Biology

Background:

  • Medin is a key component of vascular amyloid deposits in individuals over 50.
  • Medin aggregation is implicated in endothelial dysfunction and vascular inflammation, contributing to vascular diseases.
  • The structural and dynamic aspects of medin aggregation remain poorly understood.

Purpose of the Study:

  • To investigate medin folding and dimerization dynamics and conformations.
  • To elucidate the structural basis of medin amyloid aggregation.
  • To identify potential therapeutic targets for medin-related vascular pathologies.

Main Methods:

  • Atomistic discrete molecular dynamics simulations were employed.
  • Simulations analyzed medin monomer folding, dimerization, and oligomerization.
  • Key medin peptide segments (medin30-41, medin42-50) were analyzed for their role in aggregation.

Main Results:

  • Medin folding initiates with beta-sheet formation in medin30-41 and medin42-50 regions.
  • Medin monomers typically adopt three or four beta-strands with a dynamic N-terminal helix.
  • Medin peptides readily form beta-sheet-rich dimers and beta-barrel oligomers, with medin30-41 and medin42-50 crucial for aggregation.

Conclusions:

  • The medin30-41 and medin42-50 regions are critical for stabilizing medin structure and driving amyloid aggregation.
  • These regions represent promising targets for developing antiamyloid inhibitors.
  • The study provides a comprehensive understanding of medin monomer conformations and dimerization dynamics, aiding in understanding vascular disease pathology.