Catabolism of serine enantiomers represses enterohemorrhagic <i>Escherichia coli</i> virulence factors via modulation of the nitrogen stress response
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.
Article Details
Journal Info
Proceedings of the National Academy of Sciences
National Academy of Sciences
Authors (17)
Emily Addington
School of Infection and Immunity, University of Glasgow
Kabo R. Wale
School of Infection and Immunity, University of Glasgow
Emily Horsburgh
School of Infection and Immunity, University of Glasgow
Margot Fargeas
Department of Microbiology, School of Genetics and Microbiology, Moyne Institute of Preventive Medicine, Trinity College Dublin
Leonidas Spathis
School of Infection and Immunity, University of Glasgow
Weronika Leśniak
Department of Microbiology, School of Genetics and Microbiology, Moyne Institute of Preventive Medicine, Trinity College Dublin
Saoirse Flavin
Department of Microbiology, School of Genetics and Microbiology, Moyne Institute of Preventive Medicine, Trinity College Dublin
Patricia T. Rimbi
School of Infection and Immunity, University of Glasgow
David R. Mark
School of Infection and Immunity, University of Glasgow
Sofia Sandalli
School of Infection and Immunity, University of Glasgow
Ester Serrano
School of Infection and Immunity, University of Glasgow
Gavin Blackburn
MVLS Shared Research Facilities, University of Glasgow
Clément Regnault
MVLS Shared Research Facilities, University of Glasgow
Phillip D. Whitfield
MVLS Shared Research Facilities, University of Glasgow
James P. R. Connolly
Newcastle University Biosciences Institute, Newcastle University
Andrew J. Roe
School of Infection and Immunity, University of Glasgow
Nicky O’Boyle
Department of Microbiology, School of Genetics and Microbiology, Moyne Institute of Preventive Medicine, Trinity College Dublin