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Membrane Microdomain Disassembly Inhibits MRSA Antibiotic Resistance
Author(s) -
Esther GarcíaFernández,
Gudrun Koch,
Rabea M. Wagner,
Ágnes Fekete,
Stephanie T. Stengel,
Johannes Schneider,
Benjamin MielichSüss,
Sebastian Geibel,
Sebastian M. Markert,
Christian Stigloher,
Daniel López
Publication year - 2017
Publication title -
cell
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 26.304
H-Index - 776
eISSN - 1097-4172
pISSN - 0092-8674
DOI - 10.1016/j.cell.2017.10.012
Subject(s) - biology , lipid raft , penicillin binding proteins , staphylococcus aureus , microbiology and biotechnology , antibiotics , bacteria , lipid microdomain , penicillin , pathogen , mutant , antibiotic resistance , lipopeptide , membrane , signal transduction , biochemistry , gene , genetics
A number of bacterial cell processes are confined functional membrane microdomains (FMMs), structurally and functionally similar to lipid rafts of eukaryotic cells. How bacteria organize these intricate platforms and what their biological significance is remain important questions. Using the pathogen methicillin-resistant Staphylococcus aureus (MRSA), we show here that membrane-carotenoid interaction with the scaffold protein flotillin leads to FMM formation, which can be visualized using super-resolution array tomography. These membrane platforms accumulate multimeric protein complexes, for which flotillin facilitates efficient oligomerization. One of these proteins is PBP2a, responsible for penicillin resistance in MRSA. Flotillin mutants are defective in PBP2a oligomerization. Perturbation of FMM assembly using available drugs interferes with PBP2a oligomerization and disables MRSA penicillin resistance in vitro and in vivo, resulting in MRSA infections that are susceptible to penicillin treatment. Our study demonstrates that bacteria possess sophisticated cell organization programs and defines alternative therapies to fight multidrug-resistant pathogens using conventional antibiotics.

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