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Production and Visualization of Bacterial Spheroplasts and Protoplasts to Characterize Antimicrobial Peptide Localization
Published on: August 11, 2018
Stretch-activated pore of the antimicrobial peptide, magainin 2
Mohammad Abu Sayem Karal, Jahangir Md Alam, Tomoki Takahashi
1∥Theoretical Problem Center of Physico-Chemical Pharmacology, Russian Academy of Sciences, Kosugina, 4, 117977, Moscow, Russia.
Abstract:
Antimicrobial peptide magainin 2 forms pores in lipid membranes and induces membrane permeation of the cellular contents. Although this permeation is likely the main cause of its bactericidal activity, the mechanism of pore formation remains poorly understood. We therefore investigated in detail the interaction of magainin 2 with lipid membranes using single giant unilamellar vesicles (GUVs). The binding of magainin 2 to the lipid membrane of GUVs increased the fractional change in the area of the membrane, δ, which was proportional to the surface concentration of magainin 2, X. This indicates that the rate constant of the magainin 2-induced two-state transition from the intact state to the pore state greatly increased with an increase in δ. The tension of a lipid membrane following aspiration of a GUV also activated magainin 2-induced pore formation. To reveal the location of magainin 2, the interaction of carboxyfluorescein (CF)-labeled magainin 2 (CF-magainin 2) with single GUVs containing a water-soluble fluorescent probe, AF647, was investigated using confocal microscopy. In the absence of tension due to aspiration, after the interaction of magainin 2 the fluorescence intensity of the GUV rim due to CF-magainin 2 increased rapidly to a steady value, which remained constant for a long time, and at 4-32 s before the start of leakage of AF647 the rim intensity began to increase rapidly to another steady value. In contrast, in the presence of the tension, no increase in rim intensity just before the start of leakage was observed. These results indicate that magainin 2 cannot translocate from the outer to the inner monolayer until just before pore formation. Based on these results, we conclude that a magainin 2-induced pore is a stretch-activated pore and the stretch of the inner monolayer is a main driving force of the pore formation.
Insights
Antimicrobial peptide magainin 2 forms stretch-activated pores in lipid membranes. Membrane tension drives pore formation by stretching the inner lipid layer, leading to cell content leakage and bacterial death.
Area of Science:
- Biophysics
- Membrane Biology
- Antimicrobial Peptides
Background:
- Antimicrobial peptides (AMPs) like magainin 2 are crucial for innate immunity.
- Magainin 2 disrupts bacterial membranes, but its pore formation mechanism is unclear.
- Understanding AMP-membrane interactions is key to developing new antibiotics.
Purpose of the Study:
- To elucidate the mechanism of magainin 2-induced pore formation in lipid membranes.
- To investigate the role of membrane tension in magainin 2 activity.
- To determine the translocation behavior of magainin 2 during pore formation.
Main Methods:
- Utilized single giant unilamellar vesicles (GUVs) to study magainin 2 interactions.
- Employed confocal microscopy to track fluorescently labeled magainin 2 (CF-magainin 2).
- Measured membrane area changes and leakage of internal fluorescent probes (AF647).
Main Results:
- Magainin 2 binding increased membrane area change, correlating with pore formation rate.
- Membrane tension significantly enhanced magainin 2-induced pore formation.
- CF-magainin 2 localized to the GUV rim, translocating to the inner monolayer only just before pore formation.
Conclusions:
- Magainin 2-induced pores are stretch-activated.
- Membrane tension, specifically stretching of the inner monolayer, is the primary driver of pore formation.
- Magainin 2 does not translocate across the lipid bilayer until pore formation is imminent.
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