H1 helix of colicin U causes phospholipid membrane permeation
Kamila Riedlová1, Tereza Dolejšová2, Radovan Fišer3
1J. Heyrovský Institute of Physical Chemistry, Czech Academy of Sciences, Dolejškova 3, 18223 Prague, Czech Republic; Department of Physical and Macromolecular Chemistry, Faculty of Science, Charles University, Hlavova 8, 12800 Prague, Czech Republic.
Abstract:
In light of an increasing number of antibiotic-resistant bacterial strains, it is essential to understand an action imposed by various antimicrobial agents on bacteria at the molecular level. One of the leading mechanisms of killing bacteria is related to the alteration of their plasmatic membrane. We study bio-inspired peptides originating from natural antimicrobial proteins colicins, which can disrupt membranes of bacterial cells. Namely, we focus on the α-helix H1 of colicin U, produced by bacterium Shigella boydii, and compare it with analogous peptides derived from two different colicins. To address the behavior of the peptides in biological membranes, we employ a combination of molecular simulations and experiments. We use molecular dynamics simulations to show that all three peptides are stable in model zwitterionic and negatively charged phospholipid membranes. At the molecular level, their embedment leads to the formation of membrane defects, membrane permeation for water, and, for negatively charged lipids, membrane poration. These effects are caused by the presence of polar moieties in the considered peptides. Importantly, simulations demonstrate that even monomeric H1 peptides can form toroidal pores. At the macroscopic level, we employ experimental co-sedimentation and fluorescence leakage assays. We show that the H1 peptide of colicin U incorporates into phospholipid vesicles and disrupts their membranes, causing leakage, in agreement with the molecular simulations. These insights obtained for model systems seem important for understanding the mechanisms of antimicrobial action of natural bacteriocins and for future exploration of small bio-inspired peptides able to disrupt bacterial membranes.
Insights
Bio-inspired peptides, like colicin U
Area of Science:
- Biochemistry
- Molecular Biology
- Microbiology
Background:
- Rising antibiotic resistance necessitates understanding antimicrobial mechanisms.
- Bacterial membrane disruption is a key antimicrobial strategy.
- Colicins are natural antimicrobial proteins that target bacterial membranes.
Purpose of the Study:
- Investigate the membrane disruption mechanism of bio-inspired peptides.
- Focus on the α-helix H1 of colicin U and analogous peptides.
- Compare molecular simulations with experimental data.
Main Methods:
- Molecular dynamics simulations of peptides in model membranes.
- Co-sedimentation assays.
- Fluorescence leakage assays.
Main Results:
- Peptides are stable in zwitterionic and negatively charged membranes.
- Peptide embedment causes membrane defects, water permeation, and poration.
- Monomeric H1 peptides can form toroidal pores, confirmed by experiments.
Conclusions:
- Bio-inspired peptides effectively disrupt bacterial membranes.
- Polar moieties in peptides drive membrane destabilization.
- Findings support the development of novel antimicrobial peptides.
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