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Measurements of Physiological Stress Responses in C. Elegans
Published on: May 21, 2020
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.
Abstract:
During the course of cholestatic liver diseases, the toxic effect of bile acids accumulation has been related to the decreased expression of endothelial nitric oxide synthase (NOS-3) and cellular oxidative stress increase. In the present study, we have investigated the relationship between these two biological events. In the human hepatocarcinoma cell line HepG2, cytotoxic response to GCDCA was characterized by the reduced activity of the respiratory complexes II+III, the increased expression and activation of the transcription factor Sp1, and a higher binding capacity of this at positions -1386, -632 and -104 of the NOS-3 promoter (pNOS-3). This was associated with a decreased promoter activity and a consequent reduction of NOS-3 expression. The use of antioxidants in GCDCA-treated cells caused a lower activation of Sp1 and the recovery of the pNOS-3 activity and NOS-3 expression and activity. Similarly, the specific inhibition of Sp1 resulted in the improvement of NOS-3 expression. Both, antioxidant treatment and Sp1 inhibition were associated with the reduction of cell death-related parameters. Bile duct ligation in rats confirmed in vitro results concerning the activation of Sp1 and the reduction of NOS-3 expression. Our results provide direct evidence for the involvement of Sp1 in the regulation of NOS-3 expression during cholestasis. Thus, the identification of Sp1 as a potential negative regulator of NOS-3 expression represents a new mechanism by which the accumulation of bile acids causes a cytotoxic effect through the oxidative stress increase, and provides a new potential target in cholestatic liver diseases.
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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