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bioRxiv · 10.64898/2025.12.18.695265

In vitro evidence for bisphenol A as a human liver carcinogen: Environmentally relevant doses inhibit cancer protective ESR1 signaling in a human liver cell line

Abstract

I.Several environmentally ubiquitous endocrine disrupting chemicals (EDCs) are suspected carcinogens, but their mechanism(s) of action are unknown. In this study, we test the potential for a model EDC, bisphenol A (BPA), to both initiate (via oxidative mutagenesis) and promote (via endocrine disruption) liver carcinogenesis. This study is motivated by our prior finding that developmental BPA exposure caused hepatocellular carcinoma (HCC) in mice. Here, we provide in vitro evidence supporting a mechanism for BPA as a non-genotoxic carcinogen. Using a highly sensitive, error-corrected sequencing method, we demonstrate that human population-relevant doses of BPA cause mutations that are consistent with oxidative DNA damage; however, overall mutation frequency does not differ substantially from controls. In contrast, we show that BPA inhibits cancer-protective, estrogen-induced transcription of estrogen receptor 1 (ESR1) target genes in the presence of pre-pubertal, but not post-pubertal, levels of estradiol. These results constitute strong initial evidence supporting BPA as a liver cancer promoting agent. This mechanism may be generalizable to a wide range of environmental EDCs that are weak agonists for ESR1. This finding is critically important to prevention of HCC, which is prevalent, lethal, and poorly responsive to therapy.

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BibTeXRIS

Weeks, E., Kennedy, S. R., Searles, R., Carrothers, S., Davis, B., Carbone, L., Turker, M., Lloyd, R. S., Weinhouse, C.. 2025-12-22. In vitro evidence for bisphenol A as a human liver carcinogen: Environmentally relevant doses inhibit cancer protective ESR1 signaling in a human liver cell line. https://doi.org/10.64898/2025.12.18.695265

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