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Updated: Jun 28, 2026

Expression, Detergent Solubilization, and Purification of a Membrane Transporter, the MexB Multidrug Resistance Protein
Published on: December 3, 2010
Influence of polymyxins on the structural dynamics of Escherichia coli lipid membranes
A Clausell1, M Pujol, M A Alsina
1Departament de Fisicoquimica, Facultat de Farmàcia, Universitat de Barcelona, Avn. Joan XXIII s/n, 08028 Barcelona, Spain.
Abstract:
Polymyxins are a family of nonribosomic cationic peptide antibiotics highly effective against Gram-negative bacteria. Two members of this family, Polymyxins B and E (PxB, PxE), form molecular vesicle-vesicle contacts and promote a selective exchange of phospholipids at very low concentrations in the membrane, a biophysical phenomenon that can be the basis of their antibiotic mode of action. To get more insight into the interaction of these antibiotics with the lipid membrane, their effect on the structural dynamics of bilayers prepared with lipids extracted from the membrane of Escherichia coli was determined using fluorescently labeled phopholipids. Steady-state anisotropy measurements with probes that localize at different positions in the membrane give information on the effects of polymyxins on the mobility of the phospholipids. Results with PxB, PxE, colymycin M and polymyxin B nonapeptide (PxB-NP), a deacylated derivative with no antibiotic properties, are compared. At low peptide concentrations (<2 mol%) PxB and PxE bind to the membranes superficially, affecting very slightly the ordering of the lipids at the outermost part of the bilayer. Above this concentration, PxB and PxE insert more deeply in the bilayer, increasing lipid order both in the gel and liquid-crystal states and modifying phase transitions. Fluorescence experiments with pyrene labeled phospholipids indicate that the increase in lipid packing is accompanied by an enrichment of phospholipids in the bilayers. In contrast, colymycin M and PxB-NP did not modify lipid packing or phase transition, nor did they induce microdomain formation. The possible significance of these results in the antibiotic mode of action of PxB and PxE is discussed. The combination of spectroscopic techniques described here can be useful as part of a general method of screening for new antibiotics that act on the membrane by the same mechanism as polymyxins.
Insights
Polymyxins B and E (PxB, PxE) interact with bacterial membranes, altering lipid packing and phase transitions. This membrane perturbation, unlike inactive derivatives, may explain their potent antibiotic activity against Gram-negative bacteria.
Area of Science:
- Biophysics
- Microbiology
- Pharmacology
Background:
- Polymyxins are crucial antibiotics targeting Gram-negative bacteria.
- Their membrane interaction is key to their antimicrobial action.
- Understanding this interaction can reveal new antibiotic mechanisms.
Purpose of the Study:
- To investigate the biophysical effects of Polymyxins B (PxB) and E (PxE) on bacterial lipid bilayers.
- To compare the membrane interactions of active polymyxins with inactive analogs.
- To elucidate the role of membrane structural changes in polymyxin antibiotic activity.
Main Methods:
- Utilized fluorescently labeled phospholipids to study lipid bilayer dynamics.
- Employed steady-state anisotropy measurements to assess lipid mobility and order.
- Investigated effects on lipid packing, phase transitions, and microdomain formation.
Main Results:
- PxB and PxE, at concentrations >2 mol%, insert into lipid bilayers, increasing lipid order and modifying phase transitions.
- These active polymyxins induce phospholipid enrichment in the membrane.
- Inactive colymycin M and polymyxin B nonapeptide (PxB-NP) showed no significant effects on lipid packing or phase behavior.
Conclusions:
- The antibiotic activity of PxB and PxE correlates with their ability to alter bacterial membrane structure and dynamics.
- Membrane perturbation, including increased lipid packing and phospholipid enrichment, is a potential mechanism of action.
- Spectroscopic methods used can screen for novel membrane-acting antibiotics.
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