Fusidic acid resistance through changes in the dynamics of the drug target.
basic_science · Level V
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- Record sourced from PubMed, PMID 32999060.
- Also identified by DOI 10.1073/pnas.2008577117 and PMC identifier 7568287.
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Abstract
Antibiotic resistance in clinically important bacteria can be mediated by target protection mechanisms, whereby a protein binds to the drug target and protects it from the inhibitory effects of the antibiotic. The most prevalent source of clinical resistance to the antibiotic fusidic acid (FA) is expression of the FusB family of proteins that bind to the drug target (Elongation factor G [EF-G]) and promote dissociation of EF-G from FA-stalled ribosome complexes. FusB binding causes changes in both the structure and conformational flexibility of EF-G, but which of these changes drives FA resistance was not understood. We present here detailed characterization of changes in the conformational flexibility of EF-G in response to FusB binding and show that these changes are responsible for conferring FA resistance. Binding of FusB to EF-G causes a significant change in the dynamics of domain III of EF-G<sub>C3</sub> that leads to an increase in a minor, more disordered state of EF-G domain III. This is sufficient to overcome the steric block of transmission of conformational changes within EF-G by which FA prevents release of EF-G from the ribosome. This study has identified an antibiotic resistance mechanism mediated by allosteric effects on the dynamics of the drug target.
Medical subject headings
- Anti-Bacterial Agents
- Bacterial Proteins
- Drug Resistance, Bacterial
- Fusidic Acid
- Peptide Elongation Factor G