Genome-wide analysis of cellular response to bacterial genotoxin CdtB in yeast

Takao Kitagawa1, Hisashi Hoshida, Rinji Akada

  • 1Department of Applied Molecular Bioscience, Division of Engineering, Yamaguchi University Graduate School of Medicine, Tokiwadai, Ube 755-8611, Japan.

Infection and Immunity
|January 16, 2007
PubMed

Insights

The bacterial toxin CdtB causes DNA damage, primarily single-strand breaks. Yeast cells revealed that DNA repair, especially homologous recombination in diploids, is crucial for surviving CdtB-induced lesions.

Area of Science:

  • Molecular Biology
  • Genetics
  • Microbiology

Background:

  • Cytolethal distending toxins (CDTs) are bacterial virulence factors.
  • The CdtB subunit induces DNA lesions, cell cycle arrest, and cell death.
  • Understanding the cellular response to CdtB is crucial for elucidating its pathogenesis.

Purpose of the Study:

  • To identify genes involved in the yeast cellular response to CdtB-induced DNA damage.
  • To characterize the nature of CdtB-induced DNA lesions.
  • To investigate the differential sensitivity of haploid and diploid yeast to CdtB.

Main Methods:

  • A systematic transformation array (STA) of 4,706 nonessential gene deletion strains in diploid yeast was created.
  • Strains were screened for sensitivity to CdtB expression.
  • Sensitivity to HO endonuclease (DSB inducer) was assessed for comparison.

Main Results:

  • 61 CdtB-sensitive deletion strains were identified, involved in DNA metabolism, chromosome segregation, and other cellular processes.
  • CdtB-induced lesions differ from direct double-strand breaks (DSBs) as only 28 strains were sensitive to both.
  • Diploid yeast exhibit robust repair of CdtB damage via homologous recombination, unlike haploid cells which show severe growth defects.

Conclusions:

  • CdtB pathogenesis involves complex eukaryotic cellular functions.
  • Homologous recombination is a key DNA repair pathway for CdtB-induced damage in diploid cells.
  • The study provides insights into bacterial toxin mechanisms and host cell responses.

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