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A Non-Coding Small RNA MicC Contributes to Virulence in Outer Membrane Proteins in Salmonella Enteritidis
Published on: January 27, 2021
FhuA-SbmA-driven resistance pathway to microcin Y triggers transcriptomic reprogramming and virulence enhancement in
Yu Li1, Jinyu Zhang1, Yu Han1
1College of Veterinary Medicine, South China Agricultural University, Guangzhou, 510642, Guangdong, China.
Abstract:
Salmonella Typhimurium poses critical safety risks owing to its multidrug resistance and persistence in food matrices. To address this threat, we focused on microcin Y (MccY) a lasso peptide with potent activity against multidrug-resistant S. typhimurium and elucidated how mutations in the FhuA/SbmA receptors mediate MccY resistance and differentially affect bacterial virulence. Molecular docking revealed that MccY tended to bind to the N-terminal segment of FhuA within its β-barrel cavity, with key interaction sites including FhuA564Leu-MccY5His (2.5 Å hydrogen bond, MIC = 200 μg/mL) and sites such as FhuA129Ser/FhuA147Asn (MIC = 100-200 μg/mL). For SbmA, MccY forms hydrogen bonds with SbmA204Asn-MccY20Tyr (3.1 Å, MIC = 1.0 μg/mL), SbmA320Asn-MccY21Gly (2.9 Å, MIC = 200 μg/mL), and SbmA361Gln-MccY21Gly (2.9 Å, MIC = 2.0 μg/mL). The susceptibility of MccY's lasso structure domains to resistance was ranked as follows: tail < ring < loop. FhuA/SbmA mutations enhance MccY resistance (MIC>250 μg/mL) via receptor conformational changes, with FhuAAla63Gly, and FhuA401Met402Arg conferring higher resistance than SbmAGly254Glu, and SbmAGln361Leu. Chrome Azure S assays confirmed that these mutations, particularly FhuA401Met402Arg insertions and SbmAGly254Glu, and SbmAGln361Leu substitutions, disrupt iron transport. Notably, FhuA mutants exhibited altered siderophore utilization, extracellular iron accumulation, enhanced biofilm formation (p < 0.05), increased flagellar motility (migration 1.7-2.7 cm), and attenuated virulence. In contrast, SbmA mutants showed broader metabolic remodeling and downregulated invasive virulence genes (prgI, invE), which correlates with enhanced in vivo virulence in mice. FhuA/SbmA mutations in S. typhimurium drive resistance, adaptive fitness, and pathogenicity through defined receptor-ligand interactions. This work provides a molecular framework for developing integrated antimicrobial approaches to mitigate the spread of resistant pathogens.
Insights
Microcin Y (MccY) resistance in Salmonella Typhimurium is mediated by FhuA/SbmA receptor mutations. These mutations impact bacterial virulence and iron transport, offering insights for new antimicrobial strategies against resistant pathogens.
Area of Science:
- Microbiology
- Molecular Biology
- Biochemistry
Background:
- Salmonella Typhimurium presents significant food safety risks due to its multidrug resistance and persistence.
- Microcin Y (MccY), a lasso peptide, exhibits potent activity against multidrug-resistant S. Typhimurium.
Purpose of the Study:
- To elucidate how mutations in the FhuA/SbmA receptors mediate MccY resistance.
- To investigate the differential effects of these mutations on bacterial virulence and iron transport.
Main Methods:
- Molecular docking to predict MccY binding sites on FhuA and SbmA.
- Analysis of MccY resistance levels (MIC) associated with specific receptor mutations.
- Chrome Azure S assays to assess iron transport disruption.
- Evaluation of bacterial phenotypes including biofilm formation, motility, and in vivo virulence in mice.
Main Results:
- MccY binding interactions with FhuA and SbmA were identified, with varying affinities and resistance levels.
- FhuA/SbmA mutations confer MccY resistance (>250 μg/mL) through receptor conformational changes.
- Mutations disrupt iron transport, affecting siderophore utilization and extracellular iron accumulation.
- FhuA mutants showed increased biofilm formation and motility but attenuated virulence, while SbmA mutants displayed enhanced in vivo virulence.
Conclusions:
- FhuA/SbmA mutations in S. Typhimurium drive resistance, adaptive fitness, and pathogenicity via specific receptor-ligand interactions.
- Understanding these molecular mechanisms provides a framework for developing integrated antimicrobial approaches.
- This research is crucial for mitigating the spread of multidrug-resistant pathogens.
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