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Published on: June 21, 2015
Epigenetic effects of low-level sodium arsenite exposure on human liver HepaRG cells
Volodymyr P Tryndyak1, Barbara Borowa-Mazgaj1, Colleen R Steward1
1Division of Biochemical Toxicology, FDA-National Center for Toxicological Research, Jefferson, AR, USA.
Abstract:
Chronic exposure to inorganic arsenic is associated with a variety of adverse health effects, including lung, bladder, kidney, and liver cancer. Several mechanisms have been proposed for arsenic-induced tumorigenesis; however, insufficient knowledge and many unanswered questions remain to explain the integrated molecular pathogenesis of arsenic carcinogenicity. In the present study, using non-tumorigenic human liver HepaRG cells, we investigated epigenetic alterations upon prolonged exposure to a noncytotoxic concentration of sodium arsenite (NaAsO2). We demonstrate that continuous exposure of HepaRG cells to 1 µM sodium arsenite (NaAsO2) for 14 days resulted in substantial cytosine DNA demethylation and hypermethylation across the genome, among which the claudin 14 (CLDN14) gene was hypermethylated and the most down-regulated gene. Another important finding was a profound loss of histone H3 lysine 36 (H3K36) trimethylation, which was accompanied by increased damage to genomic DNA and an elevated de novo mutation frequency. These results demonstrate that continuous exposure of HepaRG cells to a noncytotoxic concentration of NaAsO2 results in substantial epigenetic abnormalities accompanied by several carcinogenesis-related events, including induction of epithelial-to-mesenchymal transition, damage to DNA, inhibition of DNA repair genes, and induction of de novo mutations. Importantly, this study highlights the intimate mechanistic link and interplay between two fundamental cancer-associated events, epigenetic and genetic alterations, in arsenic-associated carcinogenesis.
Insights
Chronic arsenic exposure causes epigenetic changes, including DNA demethylation and gene hypermethylation, leading to DNA damage and mutations. This study reveals the interplay between epigenetic and genetic alterations in arsenic-induced carcinogenesis.
Area of Science:
- Environmental Toxicology
- Molecular Carcinogenesis
- Epigenetics
Background:
- Chronic inorganic arsenic exposure is linked to various cancers.
- The molecular mechanisms of arsenic carcinogenicity are not fully understood.
- Epigenetic alterations are implicated in cancer development.
Purpose of the Study:
- To investigate epigenetic alterations in human liver cells (HepaRG) after prolonged exposure to sodium arsenite (NaAsO2).
- To explore the relationship between epigenetic changes and genetic alterations in arsenic-induced carcinogenesis.
Main Methods:
- Non-tumorigenic human liver HepaRG cells were exposed to 1 µM sodium arsenite (NaAsO2) for 14 days.
- Assessed global DNA methylation (cytosine demethylation and hypermethylation).
- Analyzed histone modifications (H3K36 trimethylation), DNA damage, mutation frequency, and epithelial-to-mesenchymal transition (EMT).
Main Results:
- Sodium arsenite exposure induced significant DNA demethylation and hypermethylation.
- Claudin 14 (CLDN14) gene was hypermethylated and downregulated.
- A notable decrease in H3K36 trimethylation occurred, correlating with increased DNA damage and de novo mutations.
- Arsenic exposure promoted EMT, DNA damage, and inhibited DNA repair genes.
Conclusions:
- Non-cytotoxic arsenic exposure induces substantial epigenetic abnormalities in liver cells.
- These epigenetic changes are linked to genetic alterations, promoting carcinogenesis.
- The study highlights the interplay between epigenetic and genetic events in arsenic-associated cancer development.

