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Published on: September 16, 2020
Boosting mitochondria activity by silencing MCJ overcomes cholestasis-induced liver injury
Paula Iruzubieta1, Naroa Goikoetxea-Usandizaga2, Lucía Barbier-Torres2
1Gastroenterology and Hepatology Department, Marqués de Valdecilla University Hospital, Clinical and Translational Digestive Research Group, IDIVAL, Santander, Spain.
Background & Aims:
Mitochondria are the major organelles for the formation of reactive oxygen species (ROS) in the cell, and mitochondrial dysfunction has been described as a key factor in the pathogenesis of cholestatic liver disease. The methylation-controlled J-protein (MCJ) is a mitochondrial protein that interacts with and represses the function of complex I of the electron transport chain. The relevance of MCJ in the pathology of cholestasis has not yet been explored.
Methods:
We studied the relationship between MCJ and cholestasis-induced liver injury in liver biopsies from patients with chronic cholestatic liver diseases, and in livers and primary hepatocytes obtained from WT and MCJ-KO mice. Bile duct ligation (BDL) was used as an animal model of cholestasis, and primary hepatocytes were treated with toxic doses of bile acids. We evaluated the effect of MCJ silencing for the treatment of cholestasis-induced liver injury.
Results:
Elevated levels of MCJ were detected in the liver tissue of patients with chronic cholestatic liver disease when compared with normal liver tissue. Likewise, in mouse models, the hepatic levels of MCJ were increased. After BDL, MCJ-KO animals showed significantly decreased inflammation and apoptosis. In an in vitro model of bile-acid induced toxicity, we observed that the loss of MCJ protected mouse primary hepatocytes from bile acid-induced mitochondrial ROS overproduction and ATP depletion, enabling higher cell viability. Finally, the in vivo inhibition of the MCJ expression, following BDL, showed reduced liver injury and a mitigation of the main cholestatic characteristics.
Conclusions:
We demonstrated that MCJ is involved in the progression of cholestatic liver injury, and our results identified MCJ as a potential therapeutic target to mitigate the liver injury caused by cholestasis.
Lay Summary:
In this study, we examine the effect of mitochondrial respiratory chain inhibition by MCJ on bile acid-induced liver toxicity. The loss of MCJ protects hepatocytes against apoptosis, mitochondrial ROS overproduction, and ATP depletion as a result of bile acid toxicity. Our results identify MCJ as a potential therapeutic target to mitigate liver injury in cholestatic liver diseases.
Insights
Methylation-controlled J-protein (MCJ) exacerbates cholestatic liver injury by increasing mitochondrial reactive oxygen species (ROS). Inhibiting MCJ protects against liver damage, identifying it as a therapeutic target for cholestasis.
Area of Science:
- Hepatology
- Mitochondrial Biology
- Molecular Medicine
Background:
- Mitochondrial dysfunction and reactive oxygen species (ROS) production are key in cholestatic liver disease pathogenesis.
- Methylation-controlled J-protein (MCJ) inhibits mitochondrial complex I, but its role in cholestasis is unknown.
Purpose of the Study:
- To investigate the role of MCJ in cholestatic liver injury.
- To evaluate MCJ as a potential therapeutic target for cholestasis.
Main Methods:
- Analysis of liver biopsies from patients and MCJ-knockout (MCJ-KO) mice with cholestatic liver diseases.
- Bile duct ligation (BDL) model in mice and in vitro studies using primary hepatocytes treated with bile acids.
- Evaluation of MCJ silencing for therapeutic potential.
Main Results:
- MCJ levels were elevated in human and mouse cholestatic liver tissues.
- MCJ-KO mice exhibited reduced inflammation and apoptosis after BDL.
- Loss of MCJ protected hepatocytes from bile acid-induced mitochondrial ROS overproduction and ATP depletion, improving cell viability.
- MCJ inhibition in vivo mitigated liver injury and cholestatic features.
Conclusions:
- MCJ is implicated in the progression of cholestatic liver injury.
- MCJ represents a promising therapeutic target for mitigating liver damage in cholestasis.
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