Sodium arsenite-induced DNA methylation alterations exacerbated by p53 knockout in MCF7 cells

Felicia Fei-Lei Chung1,2, Rita Khoueiry1, Aurélie Sallé1

  • 1Epigenomics and Mechanisms Branch, International Agency for Research on Cancer (IARC), 25 Av. Tony Garnier, 69007, Lyon, France.

Heliyon
|November 8, 2024
PubMed

Insights

p53 mutations cause widespread epigenetic changes, altering breast cancer cells' response to the carcinogen sodium arsenite. These findings reveal how mutations and environmental factors interact to promote cancer via epigenetic mechanisms.

Area of Science:

  • Oncology
  • Epigenetics
  • Environmental Health

Background:

  • Epigenetic alterations are common in human cancers.
  • Environmental pollutants can deregulate epigenetic events, influencing carcinogenesis.
  • The role of non-mutational stressors in cancer promotion is under investigation, especially in the context of existing mutations.

Purpose of the Study:

  • To investigate if p53 mutations affect cellular responses to environmental agents.
  • To explore potential epigenetic mechanisms underlying this interaction.
  • To understand how environmental carcinogens like sodium arsenite synergize with driver mutations.

Main Methods:

  • Generated p53 knockout breast cancer cell lines (MCF7, T47D) using CRISPR-Cas9.
  • Analyzed DNA methylome changes using targeted pyrosequencing and MethylationEPIC arrays.
  • Exposed cells to sodium arsenite and assessed differential methylation and cellular responses.

Main Results:

  • p53 knockout induced significant DNA methylation alterations, including CpG hypermethylation and global demethylation.
  • Sodium arsenite exposure had minimal effect on wild-type cells but markedly altered the response of p53-mutant cells.
  • Differentially methylated regions in response to sodium arsenite were linked to chromatin remodeling and cancer development genes.

Conclusions:

  • p53 mutations lead to widespread epigenetic alterations that influence cellular responses to environmental carcinogens.
  • These findings highlight a potential epigenetic mechanism for tumor promotion where environmental agents synergize with driver mutations.
  • Understanding these interactions can inform cancer prevention strategies.