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Low-dose Bisphenol A exposure alters the functionality and cellular environment in a human cardiomyocyte model.
Lamberto, Federica; Shashikadze, Bachuki; Elkhateib, Radwa; Lombardo, Salvo Danilo; Horánszky, Alex; Balogh, Andrea; Kistamás, Kornél; Zana, Melinda; Menche, Jörg; Fröhlich, Thomas; Dinnyés, András.
Affiliation
  • Lamberto F; BioTalentum Ltd., Aulich Lajos Str. 26, Gödöllo, H-2100, Hungary; Department of Physiology and Animal Health, Institute of Physiology and Animal Nutrition, Hungarian University of Agriculture and Life Sciences, Páter Károly Str. 1, H-2100, Gödöllo, Hungary.
  • Shashikadze B; Laboratory for Functional Genome Analysis (LAFUGA), Gene Center, LMU Munich, 81377, Munich, Germany.
  • Elkhateib R; Laboratory for Functional Genome Analysis (LAFUGA), Gene Center, LMU Munich, 81377, Munich, Germany.
  • Lombardo SD; Max Perutz Labs, Vienna Biocenter Campus (VBC), 1030, Vienna, Austria; Department of Structural and Computational Biology, Center for Molecular Biology, University of Vienna, 1030, Vienna, Austria; CeMM Research Center for Molecular Medicine of the Austrian Academy of Sciences, 1090, Vienna, Austria
  • Horánszky A; BioTalentum Ltd., Aulich Lajos Str. 26, Gödöllo, H-2100, Hungary; Department of Physiology and Animal Health, Institute of Physiology and Animal Nutrition, Hungarian University of Agriculture and Life Sciences, Páter Károly Str. 1, H-2100, Gödöllo, Hungary.
  • Balogh A; BioTalentum Ltd., Aulich Lajos Str. 26, Gödöllo, H-2100, Hungary.
  • Kistamás K; BioTalentum Ltd., Aulich Lajos Str. 26, Gödöllo, H-2100, Hungary.
  • Zana M; BioTalentum Ltd., Aulich Lajos Str. 26, Gödöllo, H-2100, Hungary.
  • Menche J; Max Perutz Labs, Vienna Biocenter Campus (VBC), 1030, Vienna, Austria; Department of Structural and Computational Biology, Center for Molecular Biology, University of Vienna, 1030, Vienna, Austria; CeMM Research Center for Molecular Medicine of the Austrian Academy of Sciences, 1090, Vienna, Austria
  • Fröhlich T; Laboratory for Functional Genome Analysis (LAFUGA), Gene Center, LMU Munich, 81377, Munich, Germany.
  • Dinnyés A; BioTalentum Ltd., Aulich Lajos Str. 26, Gödöllo, H-2100, Hungary; Department of Physiology and Animal Health, Institute of Physiology and Animal Nutrition, Hungarian University of Agriculture and Life Sciences, Páter Károly Str. 1, H-2100, Gödöllo, Hungary; Department of Cell Biology and Molecular M
Environ Pollut ; 335: 122359, 2023 Oct 15.
Article de En | MEDLINE | ID: mdl-37567409
ABSTRACT
Early embryonic development represents a sensitive time-window during which the foetus might be vulnerable to the exposure of environmental contaminants, potentially leading to heart diseases also later in life. Bisphenol A (BPA), a synthetic chemical widely used in plastics manufacturing, has been associated with heart developmental defects, even in low concentrations. This study aims to investigate the effects of environmentally relevant doses of BPA on developing cardiomyocytes using a human induced pluripotent stem cell (hiPSC)-derived model. Firstly, a 2D in vitro differentiation system to obtain cardiomyocytes from hiPSCs (hiPSC-CMs) have been established and characterised to provide a suitable model for the early stages of cardiac development. Then, the effects of a repeated BPA exposure, starting from the undifferentiated stage throughout the differentiation process, were evaluated. The chemical significantly decreased the beat rate of hiPSC-CMs, extending the contraction and relaxation time in a dose-dependent manner. Quantitative proteomics analysis revealed a high abundance of basement membrane (BM) components (e.g., COL4A1, COL4A2, LAMC1, NID2) and a significant increase in TNNC1 and SERBP1 proteins in hiPSC-CMs treated with BPA. Network analysis of proteomics data supported altered extracellular matrix remodelling and provided a disease-gene association with well-known pathological conditions of the heart. Furthermore, upon hypoxia-reoxygenation challenge, hiPSC-CMs treated with BPA showed higher rate of apoptotic events. Taken together, our results revealed that a long-term treatment, even with low doses of BPA, interferes with hiPSC-CMs functionality and alters the surrounding cellular environment, providing new insights about diseases that might arise upon the toxin exposure. Our study contributes to the current understanding of BPA effects on developing human foetal cardiomyocytes, in correlation with human clinical observations and animal studies, and it provides a suitable model for New Approach Methodologies (NAMs) for environmental chemical hazard and risk assessment.
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Texte intégral: 1 Collection: 01-internacional Base de données: MEDLINE Sujet principal: Myocytes cardiaques / Cellules souches pluripotentes induites Type d'étude: Risk_factors_studies Limites: Animals / Humans Langue: En Journal: Environ Pollut Sujet du journal: SAUDE AMBIENTAL Année: 2023 Type de document: Article Pays d'affiliation: Hongrie

Texte intégral: 1 Collection: 01-internacional Base de données: MEDLINE Sujet principal: Myocytes cardiaques / Cellules souches pluripotentes induites Type d'étude: Risk_factors_studies Limites: Animals / Humans Langue: En Journal: Environ Pollut Sujet du journal: SAUDE AMBIENTAL Année: 2023 Type de document: Article Pays d'affiliation: Hongrie