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June 3, 2026Foods0 citationsOpen Access

Osmotic Stress Adaptation of Poultry-Associated Salmonella Infantis and Its Implications for Food Safety

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GKGabriel I. KrügerAOAna OviedoCPCoral Pardo-Esté

Key Points

  • This study aims to understand how osmotic stress affects the behavior of Salmonella Infantis in the poultry industry.
  • Characterized the transcriptomic response of Salmonella Infantis strain SE016 under osmotic stress induced by 15% sucrose.
  • Performed phenotypic assays to assess motility and biofilm formation.
  • Conducted RNA-seq analysis to investigate gene expression changes associated with osmotic stress.
  • SE016 showed reduced flagellar motility and increased biofilm formation under osmotic stress.
  • RNA-seq indicated repression of TCA cycle genes and induction of anaerobic nitrate respiration pathways.
  • Increased expression of osmoprotectant uptake genes (proU) and endogenous trehalose synthesis (ostAB) was observed.

Abstract

Salmonella enterica serovar Infantis, an important zoonotic pathogen with increasing prevalence in the poultry industry, often persists despite rigorous disinfection. This study characterized the transcriptomic response of the multidrug-resistant Salmonella Infantis strain SE016, isolated from a poultry plant, to osmotic stress, a condition frequently induced by the use of industrial disinfectants. Phenotypic assays demonstrated that stress induced by 15% sucrose simulated osmotic stress, producing a drastic reduction in flagellar motility and a significant increase in biofilm formation in SE016, compared with a susceptible control strain. RNA-seq analysis indicated that SE016 undergoes coordinated transcriptional changes consistent with altered metabolic activity under osmotic stress. Key mechanisms include metabolic braking through repression of tricarboxylic acid (TCA) cycle genes (icd, mdh) and induction of anaerobic nitrate respiration (narGHI, narZWV) as an energy contingency. Furthermore, SE016 showed increased expression of genes involved in osmoprotectant uptake, including the proU transport system and endogenous trehalose synthesis (ostAB) while repressing proline degradation (putA). Furthermore, robust biofilm formation was observed despite repression of the master regulator csgD. This was mediated by the CsgD-independent induction of the diguanylate cyclase adrA, activating cellulose synthesis (bcs). These results suggest that pathways associated with the OmpR/EnvZ two-component system may contribute to energy balance and persistence-related phenotypes under industrial-like stress conditions.

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Cite This Study

Krüger et al. (2026) studied this question.

synapsesocial.com/papers/6a1fc42cdee9eb8c0dce5c9ehttps://doi.org/10.3390/foods15111938
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