GCDCA down-regulates gene expression by increasing Sp1 binding to the NOS-3 promoter in an oxidative stress dependent

Sandra González-Rubio1, Laura López-Sánchez2, Juan Muñoz-Castañeda1

  • 1Maimonides Institute of Biomedical Research (IMIBIC), Reina Sofía Hospital, University of Córdoba, Córdoba 14004, Spain.

Insights

Bile acid accumulation in cholestatic liver diseases decreases endothelial nitric oxide synthase (NOS-3) expression via increased oxidative stress and Sp1 activation. Targeting Sp1 may offer new therapeutic strategies for these conditions.

Area of Science:

  • Hepatology
  • Molecular Biology
  • Biochemistry

Background:

  • Cholestatic liver diseases involve bile acid accumulation, leading to cellular oxidative stress and reduced endothelial nitric oxide synthase (NOS-3) expression.
  • The precise molecular mechanisms linking bile acid toxicity, oxidative stress, and NOS-3 downregulation remain incompletely understood.

Purpose of the Study:

  • To investigate the relationship between bile acid-induced oxidative stress and the regulation of NOS-3 expression.
  • To identify the role of transcription factor Sp1 in mediating these effects.

Main Methods:

  • Utilized the human hepatocarcinoma cell line HepG2 and a rat bile duct ligation model.
  • Assessed cytotoxicity, respiratory complex activity, Sp1 expression and binding, NOS-3 promoter activity, and NOS-3 expression.
  • Employed antioxidants and Sp1 inhibitors to evaluate their effects.

Main Results:

  • In HepG2 cells, cytotoxic bile acid (GCDCA) exposure reduced respiratory complex II+III activity, increased Sp1 expression and binding to the NOS-3 promoter, decreasing NOS-3 expression.
  • Antioxidant treatment or Sp1 inhibition restored NOS-3 expression and activity, and reduced cell death markers.
  • Bile duct ligation in rats mirrored these findings, showing Sp1 activation and reduced NOS-3 expression.

Conclusions:

  • Transcription factor Sp1 is a key mediator in the downregulation of NOS-3 expression during cholestasis.
  • Sp1 acts as a negative regulator of NOS-3, linking bile acid-induced oxidative stress to reduced NOS-3 expression and cytotoxicity.
  • Targeting Sp1 presents a novel therapeutic avenue for managing cholestatic liver diseases.

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