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Updated: Jun 23, 2026

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Published on: July 7, 2020
How beta-lactam antibiotics enter bacteria: a dialogue with the porins
Chloë E James1, Kozhinjampara R Mahendran, Alexander Molitor
1UMR-MD-1, Transporteurs membranaires, Chimiorésistance et Drug Design, Faculté de Médecine, IFR 88, Université de la Méditerranée, Marseille, France.
Background:
Multi-drug resistant (MDR) infections have become a major concern in hospitals worldwide. This study investigates membrane translocation, which is the first step required for drug action on internal bacterial targets. beta-lactams, a major antibiotic class, use porins to pass through the outer membrane barrier of Gram-negative bacteria. Clinical reports have linked the MDR phenotype to altered membrane permeability including porin modification and efflux pump expression.
Methodology/Principal Findings:
Here influx of beta-lactams through the major Enterobacter aerogenes porin Omp36 is characterized. Conductance measurements through a single Omp36 trimer reconstituted into a planar lipid bilayer allowed us to count the passage of single beta-lactam molecules. Statistical analysis of each transport event yielded the kinetic parameters of antibiotic travel through Omp36 and distinguishable translocation properties of beta-lactams were quantified for ertapenem and cefepime. Expression of Omp36 in an otherwise porin-null bacterial strain is shown to confer increases in the killing rate of these antibiotics and in the corresponding bacterial susceptibility.
Conclusions/Significance:
We propose the idea of a molecular "passport" that allows rapid transport of substrates through porins. Deciphering antibiotic translocation provides new insights for the design of novel drugs that may be highly effective at passing through the porin constriction zone. Such data may hold the key for the next generation of antibiotics capable of rapid intracellular accumulation to circumvent the further development MDR infections.
Insights
Understanding how beta-lactam antibiotics cross bacterial membranes via porins like Omp36 is key to fighting multi-drug resistant infections. This study quantifies antibiotic passage, aiding new drug design.
Area of Science:
- Microbiology
- Biophysics
- Drug Discovery
Background:
- Multi-drug resistant (MDR) infections pose a significant global health threat.
- Antibiotic efficacy relies on reaching intracellular bacterial targets, often requiring passage through outer membranes via porins.
- Gram-negative bacteria's outer membrane presents a barrier, with porin modification linked to MDR phenotypes.
Purpose of the Study:
- To characterize the membrane translocation of beta-lactam antibiotics through the Enterobacter aerogenes porin Omp36.
- To quantify the kinetic parameters and translocation properties of specific beta-lactams (ertapenem, cefepime) through Omp36.
- To assess the impact of Omp36 expression on bacterial susceptibility to beta-lactams.
Main Methods:
- Single-channel conductance measurements of Omp36 reconstituted in planar lipid bilayers.
- Quantification of single beta-lactam molecule translocation events.
- Bacterial susceptibility assays using a porin-null strain expressing Omp36.
Main Results:
- Detailed kinetic parameters for beta-lactam transport through Omp36 were determined.
- Distinguishable translocation properties of ertapenem and cefepime were quantified.
- Omp36 expression in bacteria increased killing rates and susceptibility to beta-lactams.
Conclusions:
- A model of molecular 'passport' for rapid porin translocation is proposed.
- Understanding antibiotic-porin interactions offers insights for designing next-generation antibiotics.
- Targeting porin translocation may help overcome multi-drug resistance and enhance intracellular antibiotic accumulation.
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