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Updated: Jan 31, 2026

Seven Steps to Stellate Cells
Published on: May 10, 2011
Stevioside inhibits experimental fibrosis by down-regulating profibrotic Smad pathways and blocking hepatic stellate
Sael Casas-Grajales1, Diana Alvarez-Suarez1, Erika Ramos-Tovar1
1Department of Pharmacology, Cinvestav-IPN, Mexico City, Mexico.
Abstract:
Liver cirrhosis is associated with increased morbidity and mortality with important health and social consequences; however, an effective treatment has not been found yet. Previous reports have shown some beneficial effects of stevioside (SVT) in different diseases, but the ability of SVT to inhibit liver cirrhosis has not been reported. Therefore, we studied the potential of this diterpenoid to inhibit liver cirrhosis induced by thioacetamide, a model that shares many similarities with the human disease, and investigated the possible underlying molecular mechanism using in vivo and in vitro approaches. Cirrhosis was induced in male Wistar rats by chronic thioacetamide administration (200 mg/kg) intraperitoneally three times per week. Rats received saline or SVT (20 mg/kg) two times daily intraperitoneally. In addition, co-cultures were incubated with either lipopolysaccharide or ethanol. Liver fibrosis, hepatic stellate cells activation, metalloproteinases activity, canonical and non-canonical Smads pathway and expression of several profibrogenic genes were evaluated. Thioacetamide activated hepatic stellate cells and distorted the liver parenchyma with the presence of abundant thick bands of collagen. In addition, thioacetamide up-regulated the protein expression of α-smooth muscle actin, transforming growth factor-β1, metalloproteinases-9,-2 and -13 and overstimulate the canonical and non-canonical Smad pathways. SVT administration inhibited all of these changes. In vitro, SVT inhibited the up-regulation of several genes implicated in cirrhosis when cells were exposed to lipopolysaccharides or ethanol. We conclude that SVT inhibited liver damage by blocking hepatic stellate cells activation, down-regulating canonical and non-canonical profibrotic Smad pathways.
Insights
Stevioside (SVT) effectively inhibits liver cirrhosis by blocking hepatic stellate cell activation and down-regulating profibrotic Smad pathways. This diterpenoid shows promise in treating liver damage and fibrosis.
Area of Science:
- Hepatology
- Molecular Biology
- Pharmacology
Background:
- Liver cirrhosis presents significant morbidity and mortality, with unmet therapeutic needs.
- Stevioside (SVT), a diterpenoid, has demonstrated beneficial effects in various diseases, but its anti-cirrhotic potential is unexplored.
- Thioacetamide-induced liver cirrhosis in rats serves as a relevant model for human disease.
Purpose of the Study:
- To investigate the potential of stevioside (SVT) in inhibiting thioacetamide-induced liver cirrhosis.
- To elucidate the underlying molecular mechanisms of SVT's anti-fibrotic effects.
- To assess SVT's efficacy in vitro against lipopolysaccharide- or ethanol-induced cellular damage.
Main Methods:
- Liver cirrhosis was induced in Wistar rats using chronic thioacetamide administration.
- Rats were treated with saline or SVT (20 mg/kg) intraperitoneally.
- In vitro studies involved co-cultures exposed to lipopolysaccharide or ethanol.
- Evaluated parameters included liver fibrosis, hepatic stellate cell activation, metalloproteinase activity, Smad pathways, and profibrogenic gene expression.
Main Results:
- Thioacetamide induced liver fibrosis, activated hepatic stellate cells, and increased collagen deposition.
- Thioacetamide upregulated α-smooth muscle actin, TGF-β1, metalloproteinases (-9, -2, -13), and Smad pathways.
- SVT administration significantly inhibited these thioacetamide-induced changes.
- In vitro, SVT suppressed the upregulation of cirrhosis-implicated genes in response to LPS or ethanol.
Conclusions:
- Stevioside (SVT) demonstrates potent anti-fibrotic activity against liver cirrhosis.
- SVT inhibits liver damage by preventing hepatic stellate cell activation.
- The mechanism involves the downregulation of both canonical and non-canonical profibrotic Smad pathways.
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