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Updated: Dec 9, 2025

Nanomechanics of Drug-target Interactions and Antibacterial Resistance Detection
Published on: October 25, 2013
Simulations of octapeptin-outer membrane interactions reveal conformational flexibility is linked to antimicrobial
Xukai Jiang1, Kai Yang2, Bing Yuan2
1Biomedicine Discovery Institute, Infection & Immunity Program, Department of Microbiology, Monash University, Melbourne, Victoria, Australia.
Abstract:
The octapeptins are lipopeptide antibiotics that are structurally similar to polymyxins yet retain activity against polymyxin-resistant Gram-negative pathogens, suggesting they might be used to treat recalcitrant infections. However, the basis of their unique activity is unclear because of the difficulty in generating high-resolution experimental data of the interaction of antimicrobial peptides with lipid membranes. To elucidate these structure-activity relationships, we employed all-atom molecular dynamics simulations with umbrella sampling to investigate the conformational and energetic landscape of octapeptins interacting with bacterial outer membrane (OM). Specifically, we examined the interaction of octapeptin C4 and FADDI-115, lacking a single hydroxyl group compared with octapeptin C4, with the lipid A-phosphoethanolamine modified OM of Acinetobacter baumannii Octapeptin C4 and FADDI-115 both penetrated into the OM hydrophobic center but experienced different conformational transitions from an unfolded to a folded state that was highly dependent on the structural flexibility of their respective N-terminal fatty acyl groups. The additional hydroxyl group present in the fatty acyl group of octapeptin C4 resulted in the molecule becoming trapped in a semifolded state, leading to a higher free energy barrier for OM penetration. The free energy barrier for the translocation through the OM hydrophobic layer was ∼72 kcal/mol for octapeptin C4 and 62 kcal/mol for FADDI-115. Our results help to explain the lower antimicrobial activity previously observed for octapeptin C4 compared with FADDI-115 and more broadly improve our understanding of the structure-function relationships of octapeptins. These findings may facilitate the discovery of next-generation octapeptins against polymyxin-resistant Gram-negative 'superbugs.'
Insights
Octapeptins show promise against resistant bacteria. Molecular dynamics revealed structural differences in octapeptins C4 and FADDI-115 impact their membrane penetration, explaining varying antimicrobial activity.
Area of Science:
- Biochemistry
- Microbiology
- Computational Biology
Background:
- Octapeptins are lipopeptide antibiotics effective against polymyxin-resistant Gram-negative pathogens.
- Understanding octapeptin-membrane interactions is crucial for treating recalcitrant infections.
Purpose of the Study:
- To elucidate the structure-activity relationships of octapeptins.
- To investigate the molecular mechanisms behind octapeptin activity against bacterial outer membranes.
Main Methods:
- All-atom molecular dynamics simulations with umbrella sampling were used.
- Simulations focused on octapeptin C4 and FADDI-115 interacting with the Acinetobacter baumannii outer membrane.
Main Results:
- Both octapeptins penetrated the outer membrane but adopted different conformations.
- Octapeptin C4's hydroxyl group hindered penetration, creating a higher free energy barrier (∼72 kcal/mol) compared to FADDI-115 (62 kcal/mol).
- Conformational changes were dependent on the flexibility of the N-terminal fatty acyl groups.
Conclusions:
- The structural differences explain the observed lower antimicrobial activity of octapeptin C4 versus FADDI-115.
- Findings advance understanding of octapeptin structure-function relationships.
- This research may guide the development of new antibiotics against resistant Gram-negative bacteria.
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