Bacterial intoxication evokes cellular senescence with persistent DNA damage and cytokine signalling

Hana Blazkova1, Katerina Krejcikova, Pavel Moudry

  • 1Department of Genome Integrity, Institute of Molecular Genetics, v.v.i., Academy of Sciences of the Czech Republic, Czech Republic.

Insights

Bacterial cytolethal distending toxins (CDTs) induce cellular senescence, a stress response characterized by DNA damage signaling and cytokine release. This finding reveals a new role for bacterial toxins in disease pathogenesis.

Area of Science:

  • Microbiology
  • Cell Biology
  • Toxicology

Background:

  • Cytolethal distending toxins (CDTs) are bacterial virulence factors with genotoxic effects.
  • Cellular responses to CDTs, including cell-cycle arrest and apoptosis, are not fully understood.

Purpose of the Study:

  • To investigate the cellular fate of mammalian cells surviving intoxication by Haemophilus ducreyi CDT.
  • To characterize the molecular and phenotypic changes associated with CDT exposure.

Main Methods:

  • Exposure of normal and cancer cell lines (fibroblasts, HeLa, U2-OS) to H. ducreyi CDT.
  • Analysis of DNA damage signaling (53BP1/gammaH2AX foci).
  • Assessment of senescence markers (beta-galactosidase activity, PML nuclear bodies, cytokine expression).
  • Evaluation of chromosomal aberrations (micronucleation).

Main Results:

  • Surviving cells exhibited hallmarks of cellular senescence, including persistent DNA damage signaling.
  • Senescent cells showed increased beta-galactosidase activity, expanded PML nuclear bodies, and elevated IL-6, IL-8, and IL-24 expression.
  • Evidence of chromosomal aberrations (micronucleation) was observed.

Conclusions:

  • Bacterial intoxication by CDTs can induce premature cellular senescence, similar to other cellular stresses.
  • CDTs activate anticancer barriers (apoptosis and senescence) and cause genotoxicity.
  • These findings suggest a potential role for CDTs in human disease and warrant further investigation.

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