Structural and mechanistic basis for translation inhibition by macrolide and ketolide antibiotics

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作者
Bertrand Beckert
Elodie C. Leroy
Shanmugapriya Sothiselvam
Lars V. Bock
Maxim S. Svetlov
Michael Graf
Stefan Arenz
Maha Abdelshahid
Britta Seip
Helmut Grubmüller
Alexander S. Mankin
C. Axel Innis
Nora Vázquez-Laslop
Daniel N. Wilson
机构
[1] University of Hamburg,Institute for Biochemistry and Molecular Biology
[2] Institut Européen de Chimie et Biologie,Univ. Bordeaux, Centre National de la Recherche Scientifique, Institut National de la Santé et de la Recherche Médicale, ARNA, UMR 5320, U1212
[3] University of Illinois at Chicago,Center for Biomolecular Sciences
[4] Max Planck Institute for Biophysical Chemistry,Theoretical and Computational Biophysics Department
来源
Nature Communications | / 12卷
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摘要
Macrolides and ketolides comprise a family of clinically important antibiotics that inhibit protein synthesis by binding within the exit tunnel of the bacterial ribosome. While these antibiotics are known to interrupt translation at specific sequence motifs, with ketolides predominantly stalling at Arg/Lys-X-Arg/Lys motifs and macrolides displaying a broader specificity, a structural basis for their context-specific action has been lacking. Here, we present structures of ribosomes arrested during the synthesis of an Arg-Leu-Arg sequence by the macrolide erythromycin (ERY) and the ketolide telithromycin (TEL). Together with deep mutagenesis and molecular dynamics simulations, the structures reveal how ERY and TEL interplay with the Arg-Leu-Arg motif to induce translational arrest and illuminate the basis for the less stringent sequence-specific action of ERY over TEL. Because programmed stalling at the Arg/Lys-X-Arg/Lys motifs is used to activate expression of antibiotic resistance genes, our study also provides important insights for future development of improved macrolide antibiotics.
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