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Updated: Jul 16, 2025

Measuring Peptide Translocation into Large Unilamellar Vesicles
Published on: January 27, 2012
Hydrophobic moment drives penetration of bacterial membranes by transmembrane peptides
Tyler S Johnson1, Aleksandra A Bourdine1, Charles M Deber1
1Program in Molecular Medicine, Research Institute, The Hospital for Sick Children, Toronto, Ontario, Canada; Department of Biochemistry, University of Toronto, Toronto, Ontario, Canada.
Abstract:
With antimicrobial resistance (AMR) remaining a persistent and growing threat to human health worldwide, membrane-active peptides are gaining traction as an alternative strategy to overcome the issue. Membrane-embedded multi-drug resistant (MDR) efflux pumps are a prime target for membrane-active peptides, as they are a well-established contributor to clinically relevant AMR infections. Here, we describe a series of transmembrane peptides (TMs) to target the oligomerization motif of the AcrB component of the AcrAB-TolC MDR efflux pump from Escherichia coli. These peptides contain an N-terminal acetyl-A-(Sar)3 (sarcosine; N-methylglycine) tag and a C-terminal lysine tag-a design strategy our lab has utilized to improve the solubility and specificity of targeting for TMs previously. While these peptides have proven useful in preventing AcrB-mediated substrate efflux, the mechanisms by which these peptides associate with and penetrate the bacterial membrane remained unknown. In this study, we have shown peptide hydrophobic moment (μH)-the measure of concentrated hydrophobicity on one face of a lipopathic α-helix-drives bacterial membrane permeabilization and depolarization, likely through lateral-phase separation of negatively-charged POPG lipids and the disruption of lipid packing. Our results show peptide μH is an important consideration when designing membrane-active peptides and may be the determining factor in whether a TM will function in a permeabilizing or non-permeabilizing manner when embedded in the bacterial membrane.
Insights
Antimicrobial resistance (AMR) is a global threat. New membrane-active peptides target efflux pumps, with hydrophobic moment driving bacterial membrane permeabilization and depolarization to combat AMR infections.
Area of Science:
- Microbiology
- Biochemistry
- Drug Discovery
Background:
- Antimicrobial resistance (AMR) poses a significant global health challenge.
- Multi-drug resistant (MDR) efflux pumps are key contributors to AMR.
- Membrane-active peptides offer a promising alternative strategy against AMR.
Purpose of the Study:
- To investigate the mechanism of action for transmembrane peptides (TMs) targeting the AcrB efflux pump.
- To understand how TMs associate with and penetrate bacterial membranes.
- To identify key peptide properties influencing membrane activity.
Main Methods:
- Design and synthesis of novel transmembrane peptides (TMs) targeting the AcrB efflux pump.
- Utilized N-terminal acetyl-A-(Sar)3 and C-terminal lysine tags for improved peptide properties.
- Investigated peptide-induced bacterial membrane permeabilization and depolarization.
Main Results:
- Peptide hydrophobic moment (μH) was identified as the primary driver of bacterial membrane permeabilization and depolarization.
- Mechanism likely involves lateral-phase separation of negatively-charged lipids and disruption of lipid packing.
- Demonstrated a correlation between μH and the permeabilizing or non-permeabilizing function of TMs.
Conclusions:
- Hydrophobic moment (μH) is a critical parameter in designing effective membrane-active peptides.
- Understanding μH can guide the development of novel antimicrobial strategies targeting bacterial membranes.
- This research provides insights into overcoming AMR by targeting MDR efflux pumps.
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