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Rapid Identification of Chemical Genetic Interactions in Saccharomyces cerevisiae
Published on: April 5, 2015
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.
Abstract:
The cytolethal distending toxins (CDTs) are secreted virulence proteins produced by several bacterial pathogens, and the subunit CdtB has the ability to create DNA lesions, primarily DNA single-strand breaks (SSBs) in vitro, and cause cell cycle arrest, cellular distension, and cell death in both mammalian and yeast cells. To elucidate the components of the mechanisms underlying the response to CdtB-induced DNA lesions, a CdtB expression plasmid was transformed into a series of diploid yeast strains harboring deletions in 4,708 nonessential genes. A total of 4,706 of these clones were successfully transformed, which we have now designated as a systematic transformation array (STA), and were subsequently screened. We identified 61 sensitive strains from the STA whose deleted genes can be categorized into a number of groups, including DNA metabolism, chromosome segregation, vesicular traffic, RNA catabolism, protein translation, morphogenesis, and nuclear transport, as well as one unknown open reading frame. However, only 28 of these strains were found to be sensitive to HO endonuclease, which is known to create a DNA double-strand break (DSB), suggesting that CdtB-induced DNA lesion is not similar to the direct DSB. Amazingly, CdtB expression elicits severe growth defects in haploid yeast cells, but only marginal defects in diploid yeast cells. The presence and absence of genes known to be involved in DNA repair in these genome-wide data reveal that CdtB-induced DNA damage is specifically repaired well in the diploid by homologous recombination but not by other repair mechanisms. Our present results provide insights into how CdtB pathogenesis is linked to eukaryotic cellular functions.
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.

