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Transcriptomic profiling reveals crizotinib-induced hepatotoxicity through ROS-mediated activation of the JNK/NLRP3
Min Li1,2, Zhouli Yue2,3, Menglin Wang2,3
1Department of Oncology, People's Hospital of Zhengzhou (People's Hospital of Henan University of Chinese Medicine), Zhengzhou, China.
Abstract:
Crizotinib, a first-generation tyrosine kinase inhibitor, demonstrates excellent clinical efficacy in treating non-small cell lung cancer (NSCLC). However, its clinical application is often limited by severe hepatotoxicity, the underlying mechanisms of which remain poorly understood. This study aimed to investigate the molecular mechanisms of crizotinib-induced hepatotoxicity in mice using transcriptomic analysis. Male ICR mice were orally administered crizotinib at doses of 100, 200, and 300 mg/kg for 7 consecutive days. Hepatotoxicity was assessed by measuring serum alanine aminotransferase (ALT) and aspartate aminotransferase (AST) levels, along with histopathological evaluation via hematoxylin and eosin (H&E) staining. Transcriptomic and bioinformatics analyses of liver tissues were conducted to identify potential toxicological pathways. Oxidative stress markers were quantified using biochemical assay kits. Hepatic macrophage activation was examined by F4/80 immunostaining, and protein expression levels were analyzed by western blotting. Crizotinib administration resulted in dose-dependent liver injury, as indicated by elevated serum ALT and AST levels, body weight loss, and histological abnormalities. Transcriptomic profiling revealed significant enrichment of oxidative stress-related pathways, with protein-protein interaction (PPI) analysis identifying Jun as a key hub gene. Crizotinib significantly increased hepatic reactive oxygen species (ROS), malondialdehyde (MDA), and oxidized glutathione (GSSG) levels, while reducing reduced glutathione (GSH) levels and the GSH/GSSG ratio. Additionally, crizotinib significantly upregulated Bax and downregulated Bcl-2 expression, promoted macrophage infiltration, and increased the expression of JNK and NLRP3 proteins. These findings suggest that crizotinib-induced hepatotoxicity may be mediated by ROS-induced activation of the JNK/NLRP3 signaling pathway, which subsequently promotes hepatic inflammation and apoptosis.
Insights
Crizotinib causes liver injury in mice by increasing oxidative stress and activating the JNK/NLRP3 pathway, leading to inflammation and apoptosis. Understanding these mechanisms is crucial for managing non-small cell lung cancer treatment side effects.
Area of Science:
- Toxicology
- Molecular Biology
- Pharmacology
Background:
- Crizotinib is effective for non-small cell lung cancer (NSCLC) but causes severe hepatotoxicity.
- The molecular mechanisms underlying crizotinib-induced liver injury are not well understood.
Purpose of the Study:
- To investigate the molecular mechanisms of crizotinib-induced hepatotoxicity in a mouse model.
- To identify key pathways and molecular players involved in crizotinib liver injury.
Main Methods:
- Mice were treated with crizotinib (100-300 mg/kg) for 7 days.
- Hepatotoxicity assessed via serum ALT/AST, histology, and transcriptomic analysis.
- Oxidative stress, macrophage activation, and protein expression (JNK, NLRP3) were evaluated.
Main Results:
- Crizotinib caused dose-dependent liver injury, elevated ALT/AST, and histological damage.
- Transcriptomics revealed enrichment of oxidative stress pathways; Jun identified as a key hub gene.
- Increased ROS, MDA, GSSG; decreased GSH, GSH/GSSG ratio; upregulated Bax, downregulated Bcl-2; enhanced macrophage infiltration, JNK, NLRP3 expression.
Conclusions:
- Crizotinib-induced hepatotoxicity is mediated by reactive oxygen species (ROS).
- Activation of the JNK/NLRP3 signaling pathway promotes hepatic inflammation and apoptosis.
- Findings provide insights into managing crizotinib-related liver injury in NSCLC patients.
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