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Published on: April 15, 2019
Structural basis for antibiotic resistance mediated by the Bacillus subtilis ABCF ATPase VmlR
Caillan Crowe-McAuliffe1, Michael Graf1, Paul Huter1
1Institute for Biochemistry and Molecular Biology, University of Hamburg, 20146 Hamburg, Germany.
Abstract:
Many Gram-positive pathogenic bacteria employ ribosomal protection proteins (RPPs) to confer resistance to clinically important antibiotics. In Bacillus subtilis, the RPP VmlR confers resistance to lincomycin (Lnc) and the streptogramin A (SA) antibiotic virginiamycin M (VgM). VmlR is an ATP-binding cassette (ABC) protein of the F type, which, like other antibiotic resistance (ARE) ABCF proteins, is thought to bind to antibiotic-stalled ribosomes and promote dissociation of the drug from its binding site. To investigate the molecular mechanism by which VmlR confers antibiotic resistance, we have determined a cryo-electron microscopy (cryo-EM) structure of an ATPase-deficient B. subtilis VmlR-EQ2 mutant in complex with a B. subtilis ErmDL-stalled ribosomal complex (SRC). The structure reveals that VmlR binds within the E site of the ribosome, with the antibiotic resistance domain (ARD) reaching into the peptidyltransferase center (PTC) of the ribosome and a C-terminal extension (CTE) making contact with the small subunit (SSU). To access the PTC, VmlR induces a conformational change in the P-site tRNA, shifting the acceptor arm out of the PTC and relocating the CCA end of the P-site tRNA toward the A site. Together with microbiological analyses, our study indicates that VmlR allosterically dissociates the drug from its ribosomal binding site and exhibits specificity to dislodge VgM, Lnc, and the pleuromutilin tiamulin (Tia), but not chloramphenicol (Cam), linezolid (Lnz), nor the macrolide erythromycin (Ery).
Insights
Gram-positive bacteria use ribosomal protection proteins (RPPs) to resist antibiotics. The Bacillus subtilis VmlR protein binds stalled ribosomes, allosterically ejecting antibiotics like virginiamycin M and lincomycin.
Area of Science:
- Microbiology
- Structural Biology
- Molecular Biology
Background:
- Many Gram-positive bacteria utilize ribosomal protection proteins (RPPs) for antibiotic resistance.
- VmlR, an ABCF protein from Bacillus subtilis, confers resistance to lincomycin and streptogramin A antibiotics.
Purpose of the Study:
- To elucidate the molecular mechanism of VmlR-mediated antibiotic resistance.
- To determine the structural basis for VmlR's interaction with stalled ribosomes.
Main Methods:
- Cryo-electron microscopy (cryo-EM) was used to determine the structure of a VmlR-EQ2 mutant bound to a stalled ribosomal complex.
- Microbiological assays were performed to assess VmlR's resistance profile.
Main Results:
- The cryo-EM structure revealed VmlR binding in the ribosome's E site, with its ARD reaching the PTC and CTE contacting the SSU.
- VmlR induces a conformational change in P-site tRNA, displacing its acceptor arm from the PTC.
- VmlR specifically dislodges virginiamycin M, lincomycin, and tiamulin, but not chloramphenicol, linezolid, or erythromycin.
Conclusions:
- VmlR functions by allosterically dissociating antibiotics from the ribosome.
- The structural insights explain VmlR's specificity for certain classes of antibiotics, providing a basis for understanding resistance mechanisms.
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