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Quercetin and Its Fermented Extract as a Potential Inhibitor of Bisphenol A-Exposed HT-29 Colon Cancer Cells’ Viability

  • Nataly García-Gutiérrez
    ,
  • Gabriel Luna-Bárcenas
    ,
  • Guadalupe Herrera-Hernández
    ,
  • Rocio Campos-Vega
    ,
  • ,
  • Ana Alicia Sánchez-Tusié
  • Universidad Autonoma Queretaro
    ,
  • Instituto Politécnico Nacional
    ,
  • Instituto Nacional de Investigaciones Forestales, Agricolas y Pecuarias
    ,
  • Advanced Biomedical Research Center
Research Output: Contribution to journal Article Peer-review

Open access

Publication Information

Output type

Research Output: Contribution to journal Article Peer-review

Original language

English

Article number

5604

Journal (Volume, Issue Number)

International Journal of Molecular Sciences (Volume 24, Issue 6)

Publication milestones

  • Published - 01/03/2023

Publication status

Published - 01/03/2023

ISSN

1661-6596

External Publication IDs

  • Scopus: 85151261988

Abstract

Bisphenol A (BPA) promotes colon cancer by altering the physiological functions of hormones. Quercetin (Q) can regulate signaling pathways through hormone receptors, inhibiting cancer cells. The antiproliferative effects of Q and its fermented extract (FEQ, obtained by Q gastrointestinal digestion and in vitro colonic fermentation) were analyzed in HT-29 cells exposed to BPA. Polyphenols were quantified in FEQ by HPLC and their antioxidant capacity by DPPH and ORAC. Q and 3,4-dihydroxyphenylacetic acid (DOPAC) were quantified in FEQ. Q and FEQ exhibited antioxidant capacity. Cell viability with Q+BPA and FEQ+BPA was 60% and 50%, respectively; less than 20% of dead cells were associated with the necrosis process (LDH). Treatments with Q and Q+BPA induced cell cycle arrest in the G0/G1 phase, and FEQ and FEQ+BPA in the S phase. Compared with other treatments, Q positively modulated ESR2 and GPR30 genes. Using a gene microarray of the p53 pathway, Q, Q+BPA, FEQ and FEQ+BPA positively modulated genes involved in apoptosis and cell cycle arrest; bisphenol inhibited the expression of pro-apoptotic and cell cycle repressor genes. In silico analyses demonstrated the binding affinity of Q > BPA > DOPAC molecules for ERα and ERβ. Further studies are needed to understand the role of disruptors in colon cancer.

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