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Updated: Aug 12, 2026

Creation of Reversible Cholestatic Rat Model
Published on: May 22, 2011
Regulation of hepatic eNOS by caveolin and calmodulin after bile duct ligation in rats
1Gastrointestinal Research Unit, Mayo Clinic, Rochester, MN 55905, USA. shah.vijay@mayo.edu
Abstract:
In carbon tetrachloride-induced liver cirrhosis, diminution of hepatic endothelial nitric oxide synthase (eNOS) activity may contribute to impaired hepatic vasodilation and portal hypertension. The mechanisms responsible for these events remain unknown; however, a role for the NOS-associated proteins caveolin and calmodulin has been postulated. The purpose of this study is to characterize the expression and cellular localization of the NOS inhibitory protein caveolin-1 in normal rat liver and to then examine the role of caveolin in conjunction with calmodulin in regulation of NOS activity in cholestatic portal hypertension. In normal liver, caveolin protein is expressed preferentially in nonparenchymal cells compared with hepatocytes as assessed by Western blot analysis of isolated cell preparations. Additionally, within the nonparenchymal cell populations, caveolin expression is detected within both liver endothelial cells and hepatic stellate cells. Next, studies were performed 4 wk after bile duct ligation (BDL), a model of portal hypertension characterized by prominent cholestasis, as evidenced by a significant increase in serum cholesterol in BDL animals. After BDL, caveolin protein levels from detergent-soluble liver lysates are significantly increased as assessed by Western blot analysis. Immunoperoxidase staining demonstrates that this increase is most prominent within sinusoids and venules. Additionally, caveolin-1 upregulation is associated with a significant reduction in NOS catalytic activity in BDL liver lysates, an event that is corrected with provision of excess calmodulin, a protein that competitively binds eNOS from caveolin. We conclude that, in cholestatic portal hypertension, caveolin may negatively regulate NOS activity in a manner that is reversible by excess calmodulin.
Insights
In cholestatic portal hypertension, the protein caveolin negatively regulates nitric oxide synthase (NOS) activity. This effect is reversed by excess calmodulin, suggesting a therapeutic target for liver disease.
Area of Science:
- Hepatology
- Molecular Biology
- Vascular Biology
Background:
- Diminished hepatic endothelial nitric oxide synthase (eNOS) activity contributes to portal hypertension in liver cirrhosis.
- The roles of NOS-associated proteins, caveolin and calmodulin, in regulating eNOS activity are not fully understood.
Purpose of the Study:
- To characterize caveolin-1 expression and localization in normal rat liver.
- To investigate the role of caveolin and calmodulin in regulating NOS activity in cholestatic portal hypertension.
Main Methods:
- Western blot analysis of isolated rat liver cells and lysates.
- Immunoperoxidase staining for cellular localization.
- Bile duct ligation (BDL) model of cholestatic portal hypertension.
- Assay of NOS catalytic activity in liver lysates with and without excess calmodulin.
Main Results:
- Caveolin protein is primarily expressed in nonparenchymal cells, including liver endothelial and stellate cells, in normal rat liver.
- Following BDL, caveolin protein levels significantly increase, particularly in sinusoids and venules.
- Increased caveolin-1 correlates with reduced NOS activity, which is restored by adding calmodulin.
Conclusions:
- Caveolin negatively regulates NOS activity in cholestatic portal hypertension.
- Calmodulin can competitively bind caveolin, thereby reversing NOS inhibition.
- Targeting the caveolin-calmodulin interaction may offer a therapeutic strategy for portal hypertension.

