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Published on: November 17, 2017
Thermodynamics of Micelle Formation and Membrane Fusion Modulate Antimicrobial Lipopeptide Activity
1Department of Biochemistry and Biophysics, University of Rochester Medical Center, Rochester, New York.
Abstract:
Antimicrobial lipopeptides (AMLPs) are antimicrobial drug candidates that preferentially target microbial membranes. One class of AMLPs, composed of cationic tetrapeptides attached to an acyl chain, have minimal inhibitory concentrations in the micromolar range against a range of bacteria and fungi. Previously, we used coarse-grained molecular dynamics simulations and free energy methods to study the thermodynamics of their interaction with membranes in their monomeric state. Here, we extended the study to the biologically relevant micellar state, using, to our knowledge, a novel reaction coordinate based on hydrophobic contacts. Using umbrella sampling along this reaction coordinate, we identified the critical transition states when micelles insert into membranes. The results indicate that the binding of these AMLP micelles to membranes is thermodynamically favorable, but in contrast to the monomeric case, there are significant free energy barriers. The height of these free energy barriers depends on the membrane composition, suggesting that the AMLPs' ability to selectively target bacterial membranes may be as much kinetic as thermodynamic. This mechanism highlights the importance of considering oligomeric state in solution as criterion when optimizing peptides or lipopeptides as antibiotic leads.
Insights
Antimicrobial lipopeptides (AMLPs) in micellar form bind favorably to membranes, but face kinetic barriers. Membrane composition influences these barriers, suggesting AMLP selectivity is both kinetic and thermodynamic.
Area of Science:
- Biochemistry
- Computational Biology
- Drug Discovery
Background:
- Antimicrobial lipopeptides (AMLPs) are promising drug candidates targeting microbial membranes.
- Previous studies focused on AMLP monomer interactions with membranes.
Purpose of the Study:
- Investigate the thermodynamics of AMLP micelle interactions with membranes.
- Determine the role of oligomeric state in AMLP membrane binding and selectivity.
Main Methods:
- Coarse-grained molecular dynamics simulations.
- Free energy calculations using umbrella sampling.
- Novel reaction coordinate based on hydrophobic contacts.
Main Results:
- AMLP micelle binding to membranes is thermodynamically favorable.
- Significant free energy barriers exist for micelle insertion, unlike monomeric AMLPs.
- Barrier height varies with membrane composition, indicating kinetic influence on selectivity.
Conclusions:
- AMLP selectivity for bacterial membranes may be governed by kinetic factors, not just thermodynamics.
- The oligomeric state of AMLPs in solution is crucial for optimizing them as antibiotic leads.
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