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Published on: August 7, 2012
Hepatic NF-κB-Inducing Kinase and Inhibitor of NF-κB Kinase Subunit α Promote Liver Oxidative Stress, Ferroptosis,
Xiao Zhong1,2, Zhiguo Zhang1, Hong Shen1
1Department of Molecular and Integrative PhysiologyUniversity of Michigan Medical SchoolAnn ArborMIUSA.
Abstract:
Drug-induced hepatotoxicity limits development of new effective medications. Drugs and numerous endogenous/exogenous agents are metabolized/detoxified by hepatocytes, during which reactive oxygen species (ROS) are generated as a by-product. ROS has broad adverse effects on liver function and integrity, including damaging hepatocyte proteins, lipids, and DNA and promoting liver inflammation and fibrosis. ROS in concert with iron overload drives ferroptosis. Hepatic nuclear factor kappa B (NF-κB)-inducing kinase (NIK) is aberrantly activated in a broad spectrum of liver disease. NIK phosphorylates and activates inhibitor of NF-κB kinase subunit alpha (IKKα), and the hepatic NIK/IKKα cascade suppresses liver regeneration. However, the NIK/IKKα pathway has not been explored in drug-induced liver injury. Here, we identify hepatic NIK as a previously unrecognized mediator for acetaminophen (APAP)-induced acute liver failure. APAP treatment increased both NIK transcription and NIK protein stability in primary hepatocytes as well as in liver in mice. Hepatocyte-specific overexpression of NIK augmented APAP-induced liver oxidative stress in mice and increased hepatocyte death and mortality in a ROS-dependent manner. Conversely, hepatocyte-specific ablation of NIK or IKKα mitigated APAP-elicited hepatotoxicity and mortality. NIK increased lipid peroxidation and cell death in APAP-stimulated primary hepatocytes. Pretreatment with antioxidants or ferroptosis inhibitors blocked NIK/APAP-induced hepatocyte death. Conclusion: We unravel a previously unrecognized NIK/IKKα/ROS/ferroptosis axis engaged in liver disease progression.
Insights
Hepatic nuclear factor kappa B (NF-κB)-inducing kinase (NIK) drives acetaminophen-induced liver failure by increasing oxidative stress and ferroptosis. Inhibiting NIK or IKKα protects against drug-induced liver injury.
Area of Science:
- Hepatology
- Toxicology
- Molecular Biology
Background:
- Drug-induced hepatotoxicity is a major hurdle in medication development.
- Reactive oxygen species (ROS) generated during drug metabolism damage liver cells and promote fibrosis.
- The NIK/IKKα pathway is implicated in liver disease but its role in drug-induced liver injury is unknown.
Purpose of the Study:
- To investigate the role of hepatic NIK/IKKα signaling in acetaminophen (APAP)-induced liver injury.
- To elucidate the mechanisms by which NIK contributes to APAP hepatotoxicity.
Main Methods:
- Utilized primary hepatocytes and mouse models with hepatocyte-specific NIK or IKKα overexpression/ablation.
- Assessed oxidative stress, lipid peroxidation, ferroptosis, hepatocyte death, and mortality following APAP treatment.
- Examined NIK transcription and protein stability in response to APAP.
Main Results:
- Acetaminophen (APAP) increased hepatic NIK transcription and protein stability.
- Hepatocyte-specific NIK overexpression exacerbated APAP-induced liver oxidative stress, cell death, and mortality.
- Ablation of NIK or IKKα in hepatocytes significantly reduced APAP-induced liver injury and mortality.
- NIK promoted lipid peroxidation and cell death in APAP-treated hepatocytes, which was ameliorated by antioxidants and ferroptosis inhibitors.
Conclusions:
- Identified hepatic NIK as a critical mediator of APAP-induced acute liver failure.
- Uncovered a novel NIK/IKKα/ROS/ferroptosis axis contributing to drug-induced liver injury progression.
- Suggests targeting the NIK/IKKα pathway as a potential therapeutic strategy for drug-induced liver toxicity.
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