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Mapping Bacterial Functional Networks and Pathways in Escherichia Coli using Synthetic Genetic Arrays
Published on: November 12, 2012
Gain-of-Function Mutations in Acid Stress Response (evgS) Protect Escherichia coli from Killing by Gallium Nitrate,
Jie Zeng1, Liwen Wu1, Zhou Liu2,3
1State Key Laboratory of Molecular Vaccinology and Molecular Diagnostics, School of Public Health, Xiamen University, Xiamen, Fujian Province, China.
Abstract:
Widespread antimicrobial resistance encourages repurposing/refining of nonantimicrobial drugs for antimicrobial indications. Gallium nitrate (GaNt), an FDA-approved medication for cancer-related hypercalcemia, recently showed good activity against several clinically significant bacteria. However, the mechanism of GaNt antibacterial action is still poorly understood. In the present work, resistant and tolerant mutants of Escherichia coli were sought via multiple rounds of killing by GaNt. Multiround-enrichment yielded no resistant mutant; whole-genome sequencing of one representative GaNt-tolerant mutant uncovered mutations in three genes (evgS, arpA, and kdpD) potentially linked to protection from GaNt-mediated killing. Subsequent genetic analysis ruled out a role for arpA and kdpD, but two gain-of-function mutations in evgS conferred tolerance. The evgS mutation-mediated GaNt tolerance depended on EvgS-to-EvgA phosphotransfer; EvgA-mediated upregulation of GadE. YdeO, and SarfA also contributed to tolerance, the latter two likely through their regulation of GadE. GaNt-mediated killing of wild-type cells correlated with increased intracellular reactive oxygen species (ROS) accumulation that was abolished by the evgS-tolerant mutation. Moreover, GaNt-mediated killing was mitigated by dimethyl sulfoxide, and the evgS-tolerant mutation upregulated genes encoding enzymes involved in ROS detoxification and in the glyoxylate shunt of the tricarboxylic acid (TCA) cycle. Collectively, these findings indicate that GaNt kills bacteria through elevation of ROS; gain-of-function mutations in evgS confer tolerance by constitutively activating the EvgA-YdeO/GadE cascade of acid resistance pathways and by preventing GaNt-stimulated ROS accumulation by upregulating ROS detoxification and shifting TCA cycle carbon flux. The striking lethal activity of GaNt suggests that clinical use of the agent may not quickly lead to resistance.
Insights
Gallium nitrate (GaNt) kills bacteria by increasing reactive oxygen species (ROS). Mutations in the evgS gene confer tolerance by preventing ROS accumulation, suggesting GaNt may not rapidly cause resistance.
Area of Science:
- Microbiology
- Molecular Biology
- Drug Discovery
Background:
- Antimicrobial resistance necessitates novel therapeutic strategies.
- Gallium nitrate (GaNt), an anti-cancer drug, shows potential antibacterial activity.
- The mechanism of GaNt's antibacterial action requires elucidation.
Purpose of the Study:
- To investigate the mechanism of Gallium nitrate (GaNt) antibacterial action.
- To identify genetic factors conferring tolerance to GaNt in *Escherichia coli*.
- To explore the potential for rapid resistance development to GaNt.
Main Methods:
- Induction and whole-genome sequencing of GaNt-tolerant *E. coli* mutants.
- Genetic analysis of identified mutations in *evgS*, *arpA*, and *kdpD* genes.
- Measurement of reactive oxygen species (ROS) accumulation and gene expression analysis.
Main Results:
- No resistant mutants were obtained; tolerant mutants exhibited mutations in *evgS*.
- GaNt-mediated killing involves increased intracellular ROS.
- GaNt tolerance via *evgS* mutations involves constitutive activation of acid resistance pathways and enhanced ROS detoxification.
Conclusions:
- GaNt exerts its antibacterial effect by inducing ROS accumulation.
- Mutations in *evgS* confer GaNt tolerance through complex regulatory pathways.
- The potent bactericidal activity of GaNt suggests a low propensity for resistance development.
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