Membrane Interaction and Embedding of a Self-Assembled 4-Helix Bundle from the Antimicrobial hLL-3717-29 Fragment

Aritra Mitra1, Sandip Paul1

  • 1Department of Chemistry, Indian Institute of Technology, Guwahati 781039, Assam, India.

Insights

Antimicrobial peptides (AMPs) like hLL-37 self-assemble into cross-alpha amyloids that bind bacterial membranes. These amyloid structures sense or disrupt bacterial membranes, offering biomedical potential.

Area of Science:

  • Biophysics
  • Biochemistry
  • Molecular Biology

Background:

  • Amyloidogenic and antimicrobial peptides (AMPs) share structural similarities.
  • The human AMP LL-37 (hLL-37) core segment (hLL-3717-29) forms antimicrobial active cross-alpha amyloid four-helix bundles (4HBs).
  • Understanding how these cross-alpha amyloids interact with cell membranes at an atomic level is crucial for their function.

Purpose of the Study:

  • To investigate the atomistic interactions of hLL-3717-29 4HBs with various membrane compositions.
  • To elucidate the mechanism of membrane binding and perturbation by cross-alpha amyloids.
  • To explore the potential for de novo peptide assembly on bacterial membranes.

Main Methods:

  • Atomistic molecular dynamics simulations.
  • Simulations of 4HBs interacting with bacterial (PE:PG, PC:PG) and mammalian (PC) membrane models.
  • Analysis of binding orientation, conformational changes, thermodynamic favorability, and membrane perturbation.

Main Results:

  • Preassembled 4HBs bind stably to anionic membranes in a face-down orientation, elongating while retaining their structure.
  • Binding is thermodynamically favorable, driven by ion release and compensated entropic loss.
  • 4HB binding induces membrane curvature and lipid ordering, suggesting a "sense or disrupt" mechanism.
  • High energy barriers on PE:PG membranes indicate a sensing role for Gram-negative bacteria.

Conclusions:

  • Cross-alpha amyloids exhibit distinct binding modes with different membrane types.
  • The "sense or disrupt" mechanism highlights a novel mode of membrane engagement by amyloid structures.
  • These findings provide insights into AMP function and potential biomedical applications.

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