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Published on: March 5, 2017
Membrane Interaction and Embedding of a Self-Assembled 4-Helix Bundle from the Antimicrobial hLL-3717-29 Fragment
1Department of Chemistry, Indian Institute of Technology, Guwahati 781039, Assam, India.
Abstract:
Amyloidogenic and antimicrobial peptides (AMPs) share structural and functional similarities, suggesting that AMPs may have evolved from aggregation-prone amyloidogenic precursors through selective incorporation of cationic residues. The core segment of the human AMP LL-37 (hLL-3717-29) retains antimicrobial activity and self-assembles into ribbon-like fibrils of repeating four-helix bundles (4HBs) with a distinct cross-α architecture. As their function depends on membrane interactions, elucidating how cross-α amyloids bind and perturb membranes at the atomistic level remains essential yet unexplored. Here, we use atomistic molecular dynamics simulations to investigate how hLL-3717-29 4HBs interact with membranes of different compositions. Specifically, we examine their behavior toward PE:PG (3:1) and PC:PG (7:3) membranes mimicking bacterial compositions, pure PC representing mammalian membranes, and pure PE as a control. Our simulations show that preassembled tetrameric 4HBs bind stably to anionic membranes in a face-down orientation, elongating upon adsorption while retaining their helical nature and cross-α arrangement. The loss of translational entropy during binding is compensated by releasing surface-bound ions, making the process thermodynamically favorable in anionic membranes. 4HB binding also increases membrane curvature in anionic bilayers and enhances lipid ordering within 10 Å of its vicinity. The free energy associated with 4HB insertion into the bilayer interior highlights a previously unrecognized "sense or disrupt" mode of membrane engagement. The exceptionally high energy barrier observed in PE:PG membranes (≈53 kcal/mol), together with the pronounced membrane curvature, suggests a sensing role of 4HBs toward Gram-negative bacterial membranes, while they act as disruptors for the others. We also explore de novo assembly by simulating initially dispersed peptides near bacterial membranes to investigate whether aggregation precedes binding. Our study provides a comprehensive view of cross-α amyloid interactions with membranes that can be leveraged in biomedical applications.
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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