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.

BMC Genomics
|May 28, 2010
PubMed
Abstract

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.

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