In vitrotranscriptomic analyses reveal pathway perturbations, estrogenic activities, and potencies of data-poor BPA alternative chemicals

Author:

Matteo Geronimo12ORCID,Leingartner Karen12,Rowan-Carroll Andrea12,Meier Matthew12,Williams Andrew12,Beal Marc A34,Gagné Matthew4,Farmahin Reza4,Wickramasuriya Shamika4,Reardon Anthony J F4,Barton-Maclaren Tara4,Christopher Corton J5ORCID,Yauk Carole L2ORCID,Atlas Ella16ORCID

Affiliation:

1. Environmental Health Science and Research Bureau, Healthy Environments and Consumer Safety Branch (HECSB) Health Canada , Ottawa, Ontario K2K 0K9, Canada

2. Department of Biology, Faculty of Science, University of Ottawa , Ottawa, Ontario K1N 9A7, Canada

3. Bureau of Chemical Safety, Health Canada

4. Existing Substances Risk Assessment Bureau, Healthy Environments and Consumer Safety Branch, Health Canada , Ottawa, Ontario K2K 0K9, Canada

5. Center for Computational Toxicology and Exposure, US Environmental Protection Agency , Research Triangle Park, North Carolina, USA

6. Department of Biochemistry, Faculty of Medicine, University of Ottawa , Ottawa, Ontario K1H 8M5, Canada

Abstract

AbstractSince initial regulatory action in 2010 in Canada, bisphenol A (BPA) has been progressively replaced by structurally related alternative chemicals. Unfortunately, many of these chemicals are data-poor, limiting toxicological risk assessment. We used high-throughput transcriptomics to evaluate potential hazards and compare potencies of BPA and 15 BPA alternative chemicals in cultured breast cancer cells. MCF-7 cells were exposed to BPA and 15 alternative chemicals (0.0005–100 µM) for 48 h. TempO-Seq (BioSpyder Inc) was used to examine global transcriptomic changes and estrogen receptor alpha (ERα)-associated transcriptional changes. Benchmark concentration (BMC) analysis was conducted to identify 2 global transcriptomic points of departure: (1) the lowest pathway median gene BMC and (2) the 25th lowest rank-ordered gene BMC. ERα activation was evaluated using a published transcriptomic biomarker and an ERα-specific transcriptomic point of departure was derived. Genes fitting BMC models were subjected to upstream regulator and canonical pathway analysis in Ingenuity Pathway Analysis. Biomarker analysis identified BPA and 8 alternative chemicals as ERα active. Global and ERα transcriptomic points of departure produced highly similar potency rankings with bisphenol AF as the most potent chemical tested, followed by BPA and bisphenol C. Further, BPA and transcriptionally active alternative chemicals enriched similar gene sets associated with increased cell division and cancer-related processes. These data provide support for future read-across applications of transcriptomic profiling for risk assessment of data-poor chemicals and suggest that several BPA alternative chemicals may cause hazards at similar concentrations to BPA.

Funder

Health Canada

Natural Sciences and Engineering Research Council of Canada

Canada Research Chairs Program

Publisher

Oxford University Press (OUP)

Subject

Toxicology

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