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Immunostaining for DNA Modifications: Computational Analysis of Confocal Images
Published on: September 7, 2017
DNA methylation changes from primary cultures through senescence-bypass in Syrian hamster fetal cells initially
Daniel Desaulniers1, Cathy Cummings-Lorbetskie1, Karen Leingartner1
1Environmental Health Science and Research Bureau, Health Canada, Ottawa, Ontario, K1A 0K9, Canada.
Abstract:
Current chemical testing strategies are limited in their ability to detect non-genotoxic carcinogens (NGTxC). Epigenetic anomalies develop during carcinogenesis regardless of whether the molecular initiating event is associated with genotoxic (GTxC) or NGTxC events; therefore, epigenetic markers may be harnessed to develop new approach methodologies that improve the detection of both types of carcinogens. This study used Syrian hamster fetal cells to establish the chronology of carcinogen-induced DNA methylation changes from primary cells until senescence-bypass as an essential carcinogenic step. Cells exposed to solvent control for 7 days were compared to naïve primary cultures, to cells exposed for 7 days to benzo[a]pyrene, and to cells at the subsequent transformation stages: normal colonies, morphologically transformed colonies, senescence, senescence-bypass, and sustained proliferation in vitro. DNA methylation changes identified by reduced representation bisulphite sequencing were minimal at day-7. Profound DNA methylation changes arose during cellular senescence and some of these early differentially methylated regions (DMRs) were preserved through the final sustained proliferation stage. A set of these DMRs (e.g., Pou4f1, Aifm3, B3galnt2, Bhlhe22, Gja8, Klf17, and L1l) were validated by pyrosequencing and their reproducibility was confirmed across multiple clones obtained from a different laboratory. These DNA methylation changes could serve as biomarkers to enhance objectivity and mechanistic understanding of cell transformation and could be used to predict senescence-bypass and chemical carcinogenicity.
Insights
Epigenetic markers, specifically DNA methylation changes, can identify non-genotoxic carcinogens. These changes, particularly during senescence, serve as reliable biomarkers for predicting cell transformation and carcinogenicity.
Area of Science:
- Epigenetics
- Carcinogenesis
- Toxicology
Background:
- Current chemical testing methods struggle to detect non-genotoxic carcinogens (NGTxC).
- Epigenetic alterations occur during carcinogenesis irrespective of the initiating event (genotoxic or non-genotoxic).
- Epigenetic markers offer potential for new detection methodologies for carcinogens.
Purpose of the Study:
- To investigate the chronology of DNA methylation changes during chemical carcinogen exposure.
- To identify epigenetic biomarkers for detecting non-genotoxic carcinogens.
- To establish the role of DNA methylation in cellular transformation and senescence-bypass.
Main Methods:
- Utilized Syrian hamster fetal cells exposed to benzo[a]pyrene and solvent controls.
- Employed reduced representation bisulphite sequencing to analyze DNA methylation.
- Validated differentially methylated regions (DMRs) using pyrosequencing and assessed reproducibility across clones.
Main Results:
- Minimal DNA methylation changes were observed after short-term exposure (7 days).
- Significant DNA methylation changes emerged during cellular senescence and persisted through sustained proliferation.
- Identified and validated specific DMRs (e.g., Pou4f1, Aifm3, B3galnt2) as reproducible biomarkers.
Conclusions:
- DNA methylation changes during senescence are critical indicators of cellular transformation.
- Validated DMRs can serve as biomarkers to improve objectivity and mechanistic understanding of carcinogenesis.
- These epigenetic biomarkers show promise for predicting senescence-bypass and chemical carcinogenicity.

