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Published on: June 14, 2024
Benzo(a)pyrene induces similar gene expression changes in testis of DNA repair proficient and deficient mice
Nicole Verhofstad1, Jeroen L A Pennings, Conny Th M van Oostrom
1Department of Health Risk Analysis and Toxicology, School for Nutrition, Toxicology and Metabolism, Maastricht University, PO box 616, 6200 MD Maastricht, the Netherlands.
Background:
Benzo [a]pyrene (B[a]P) exposure induces DNA adducts at all stages of spermatogenesis and in testis, and removal of these lesions is less efficient in nucleotide excision repair deficient Xpc-/- mice than in wild type mice. In this study, we investigated by using microarray technology whether compromised DNA repair in Xpc-/- mice may lead to a transcriptional reaction of the testis to cope with increased levels of B[a]P induced DNA damage.
Results:
Two-Way ANOVA revealed only 4 genes differentially expressed between wild type and Xpc-/- mice, and 984 genes between testes of B[a]P treated and untreated mice irrespective of the mouse genotype. However, the level in which these B[a]P regulated genes are expressed differs between Wt and Xpc-/- mice (p = 0.000000141), and were predominantly involved in the regulation of cell cycle, translation, chromatin structure and spermatogenesis, indicating a general stress response. In addition, analysis of cell cycle phase dependent gene expression revealed that expression of genes involved in G1-S and G2-M phase arrest was increased after B[a]P exposure in both genotypes. A slightly higher induction of average gene expression was observed at the G2-M checkpoint in Xpc-/- mice, but this did not reach statistical significance (P = 0.086). Other processes that were expected to have changed by exposure, like apoptosis and DNA repair, were not found to be modulated at the level of gene expression.
Conclusion:
Gene expression in testis of untreated Xpc-/- and wild type mice were very similar, with only 4 genes differentially expressed. Exposure to benzo(a)pyrene affected the expression of genes that are involved in cell cycle regulation in both genotypes, indicating that the presence of unrepaired DNA damage in testis blocks cell proliferation to protect DNA integrity in both DNA repair proficient and deficient animals.
Insights
Benzo [a]pyrene exposure causes DNA damage in mouse testes. Even with compromised DNA repair, testes respond by regulating cell cycle genes to protect DNA integrity, indicating a general stress response in both wild type and Xpc-/- mice.
Area of Science:
- Reproductive biology
- Toxicology
- Molecular biology
Background:
- Benzo [a]pyrene (B[a]P) induces DNA adducts during spermatogenesis and in the testis.
- Nucleotide excision repair is less efficient in Xpc-/- mice compared to wild type mice.
- Investigating the transcriptional response of the testis to B[a]P-induced DNA damage in Xpc-/- mice.
Purpose of the Study:
- To determine if compromised DNA repair in Xpc-/- mice leads to a transcriptional response in the testis to cope with B[a]P-induced DNA damage.
- To compare the transcriptional profiles of wild type and Xpc-/- mouse testes following B[a]P exposure.
Main Methods:
- Microarray technology was employed to analyze gene expression.
- Two-Way ANOVA was used to identify differentially expressed genes.
- Analysis of cell cycle phase-dependent gene expression.
Main Results:
- B[a]P exposure affected 984 genes, primarily involved in cell cycle regulation, translation, chromatin structure, and spermatogenesis, indicating a general stress response.
- Gene expression differences between wild type and Xpc-/- mice were minimal (4 genes), but B[a]P-regulated gene expression levels differed significantly between genotypes (p = 0.000000141).
- Both genotypes showed increased expression of genes involved in G1-S and G2-M phase arrest after B[a]P exposure; apoptosis and DNA repair gene expression were not modulated.
Conclusions:
- Testis gene expression in untreated Xpc-/- and wild type mice is highly similar.
- B[a]P exposure impacts cell cycle regulatory genes in both genotypes, suggesting DNA damage triggers proliferation arrest to maintain DNA integrity.
- The study highlights a conserved testicular response to unrepaired DNA damage, irrespective of DNA repair proficiency.
