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Updated: Feb 1, 2026

Creation of Reversible Cholestatic Rat Model
Published on: May 21, 2011
Hepatic Autophagy Deficiency Compromises Farnesoid X Receptor Functionality and Causes Cholestatic Injury
Bilon Khambu1, Tiangang Li2, Shengmin Yan1
1Department of Pathology and Laboratory Medicine, Indiana University School of Medicine, Indianapolis, IN.
Abstract:
Autophagy is important for hepatic homeostasis, nutrient regeneration, and organelle quality control. We investigated the mechanisms by which liver injury occurred in the absence of autophagy function. We found that mice deficient in autophagy because of the lack of autophagy-related gene 7 or autophagy-related gene 5, key autophagy-related genes, manifested intracellular cholestasis with increased levels of serum bile acids, a higher ratio of tauromuricholic acid/taurocholic acid in the bile, increased hepatic bile acid load, abnormal bile canaliculi, and altered expression of hepatic transporters. In determining the underlying mechanism, we found that autophagy sustained and promoted the basal and up-regulated expression of farnesoid X receptor (Fxr) in the fed and starved conditions, respectively. Consequently, expression of Fxr and its downstream genes, particularly bile salt export pump, and the binding of FXR to the promoter regions of these genes, were suppressed in autophagy-deficient livers. In addition, codeletion of nuclear factor erythroid 2-related factor 2 (Nrf2) in autophagy deficiency status reversed the FXR suppression. Furthermore, the cholestatic injury of autophagy-deficient livers was reversed by enhancement of FXR activity or expression, or by Nrf2 deletion. Conclusion: Together with earlier reports that FXR can suppress autophagy, our findings indicate that autophagy and FXR form a regulatory loop and deficiency of autophagy causes abnormal FXR functionality, leading to the development of intracellular cholestasis and liver injury.
Insights
Autophagy deficiency causes liver injury by disrupting bile acid regulation through the farnesoid X receptor (Fxr) pathway. Restoring Fxr function or deleting Nrf2 reverses this cholestatic damage.
Area of Science:
- Hepatology
- Molecular Biology
- Cellular Biology
Background:
- Autophagy is crucial for liver health, nutrient balance, and organelle maintenance.
- Understanding liver injury mechanisms in autophagy-impaired states is vital.
Purpose of the Study:
- To investigate how liver injury develops without autophagy function.
- To elucidate the molecular mechanisms underlying cholestasis in autophagy-deficient livers.
Main Methods:
- Utilized mice models lacking autophagy-related gene 7 or 5.
- Analyzed bile acid levels, hepatic transporters, and gene expression (Fxr, Nrf2, bile salt export pump).
- Investigated the regulatory loop between autophagy and Fxr.
Main Results:
- Autophagy-deficient mice showed intracellular cholestasis, elevated bile acids, and altered bile canaliculi.
- Autophagy supports farnesoid X receptor (Fxr) expression and function.
- Suppression of Fxr and its downstream targets, like the bile salt export pump, was observed in autophagy-deficient livers.
- Nuclear factor erythroid 2-related factor 2 (Nrf2) deletion ameliorated Fxr suppression and cholestatic injury.
Conclusions:
- Autophagy and Fxr form a regulatory feedback loop.
- Autophagy deficiency impairs Fxr functionality, leading to cholestasis and liver injury.
- Modulating Fxr activity or Nrf2 levels can reverse autophagy-deficiency-induced liver damage.
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