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March 21, 2026Proceedings of the National Academy of Sciences0 citationsOpen Access

Catabolism of serine enantiomers represses enterohemorrhagic Escherichia coli virulence factors via modulation of the nitrogen stress response

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EAEmily AddingtonKWKabo R. WaleEHEmily Horsburgh

Key Points

  • The study aims to understand how D-serine and L-serine influence EHEC virulence factor regulation.
  • Conducted transcriptomic analysis to evaluate gene expression changes in response to D- and L-serine.
  • Utilized mutational analysis to identify key response regulators involved in T3SS repression.
  • Employed metabolomics to assess catabolic activities related to nitrogen signaling.
  • D-serine and L-serine both repress the type 3 secretion system in EHEC.
  • Repression occurs via modulation of nitrogen stress response genes without activating the SOS response.
  • NtrC and Nac were identified as essential regulators mediating T3SS repression.

Abstract

Attaching and effacing pathogens, including enterohemorrhagic Escherichia coli (EHEC), colonize their preferred intestinal niche by sensing diverse host-, diet-, and microbiota-derived signals and coordinating the expression of virulence factors. D-serine, a host metabolite abundant in urine but scarce in the intestine, restricts EHEC colonization by transcriptionally repressing the type 3 secretion system (T3SS) while activating the SOS stress response. However, the mechanism underlying virulence regulation by D-serine remains unestablished. Here, we show that multiple amino acids, including L-serine converge on this pathway, repressing the T3SS without inducing the SOS response. Transcriptomic analyses showed a common response to D- and L-serine dominated by repression of nitrogen stress response genes. Mutational analysis identified the response regulators NtrC and Nac as essential mediators of T3SS repression by both serine enantiomers. Disruption of L-serine deaminase enzymes crucially revealed that T3SS repression depends on cytoplasmic ammonia/ammonium release rather than sensing of intact serine. While EHEC lacks canonical D-serine catabolic capacity, through metabolomics we provide evidence of oxidative deamination activity, capable of producing this regulatory signal. Together, these findings establish a mechanistic link between amino acid catabolism, nitrogen stress signaling, and virulence regulation in EHEC, highlighting how metabolic flux fine-tunes pathogen adaptation to intestinal niches.

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Cite This Study

Addington et al. (2026) studied this question.

synapsesocial.com/papers/69be371c6e48c4981c67680ahttps://doi.org/10.1073/pnas.2532916123
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