Authors
Chetna Dureja, Ann M McKelvey, Julian G Hurdle
Published in
Journal of bacteriology. Pages e0031826. Sep 14, 2026. Epub Sep 14, 2026.
Abstract
Clostridioides difficile is a leading cause of antibiotic-associated diarrhea, with pathogenesis driven primarily by the glucosylating toxins TcdA and TcdB. Traditionally, toxin gene expression has been explained through regulation of the pathogenicity locus by global transcriptional regulators that integrate nutrient availability, growth phase, and environmental signals. While this framework provides a foundation for understanding toxin regulation, recent advances have broadened this perspective to include diverse metabolic and physiological inputs, including carbon and amino acid metabolism, metal ion homeostasis, redox balance, and cellular energy status. Collectively, these factors suggest that toxin gene expression is a dynamic emergent property that reflects a high level of integration of metabolic and physiological networks. In this minireview, we discuss canonical mechanisms of toxin regulation alongside new insights that highlight population heterogeneity, energy demand conflicts, metabolic constraints, purine metabolism, and cross-regulatory networks linking sporulation and virulence. We further examine discoveries from small-molecule chemical genetics demonstrating that perturbation of metabolic pathways can suppress toxin biosynthesis without substantially affecting bacterial viability. Together, these findings redefine toxin regulation as a systems-level process in which metabolic and physiological states mediate toxin production and contribute to phenotypic heterogeneity. Elucidating these networks may reveal promising targets for the development of anti-virulence strategies for C. difficile infection.
PMID:
42734620
Bibliographic data and abstract were imported from PubMed on 14 Sep 2026.
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