Publication | Closed Access
Fe-S Cluster Biosynthesis Controls Uptake of Aminoglycosides in a ROS-Less Death Pathway
239
Citations
33
References
2013
Year
Fenton ChemistryBioorganic ChemistryLipid PeroxidationReactive Oxygen SpeciesMetabolic ModelBactericidal AntibioticsRedox BiologyOxidative StressDrug ResistanceBiosynthesisBiochemistryAntimicrobial CompoundReactive Oxygen SpecieBiomolecular EngineeringNatural SciencesRos-less Death PathwayBiotechnologyMicrobiologyCellular BiochemistryMetabolismMedicine
All bactericidal antibiotics were recently proposed to kill by inducing reactive oxygen species (ROS) production, causing destabilization of iron-sulfur (Fe-S) clusters and generating Fenton chemistry. We find that the ROS response is dispensable upon treatment with bactericidal antibiotics. Furthermore, we demonstrate that Fe-S clusters are required for killing only by aminoglycosides. In contrast to cells, using the major Fe-S cluster biosynthesis machinery, ISC, cells using the alternative machinery, SUF, cannot efficiently mature respiratory complexes I and II, resulting in impendence of the proton motive force (PMF), which is required for bactericidal aminoglycoside uptake. Similarly, during iron limitation, cells become intrinsically resistant to aminoglycosides by switching from ISC to SUF and down-regulating both respiratory complexes. We conclude that Fe-S proteins promote aminoglycoside killing by enabling their uptake.
| Year | Citations | |
|---|---|---|
Page 1
Page 1