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Updated: Jan 29, 2026

Analysis of Apoptosis in Zebrafish Embryos by Whole-mount Immunofluorescence to Detect Activated Caspase 3
Published on: December 20, 2013
Aloe emodin induces hepatotoxicity by activating NF-κB inflammatory pathway and P53 apoptosis pathway in zebrafish
Yunyun Quan1, Lihong Gong1, Junlin He1
1School of Pharmacy, Chengdu University of Traditional Chinese Medicine, Key Laboratory of Standardization for Chinese Herbal Medicine, Ministry of Education, National Key Laboratory Breeding Base of Systematic Research, Development and Utilization of Chinese Medicine Resources, Chengdu, 611137, China.
Abstract:
The aim of this study was to investigate the hepatotoxic effect and its underlying mechanism of aloe emodin (AE). AE was docked with the targets of NF-κB inflammatory pathway and P53 apoptosis pathway respectively by using molecular docking technique. To verify the results of molecular docking and further investigate the hepatotoxicity mechanism of AE, the zebrafish Tg (fabp10: EGFP) was used as an animal model in vivo. The pathological sections of zebrafish liver were analyzed to observe the histopathological changes and Sudan black B was used to study whether there were inflammatory reactions in zebrafish liver or not. Then TdT-mediated dUTP Nick-End Labeling (TUNEL) was used to detect the apoptotic signal of zebrafish liver cells, finally the mRNA expression levels as well as the protein expression levels of the targets in NF-κB and P53 pathways in zebrafish were measured by quantitative Real-Time PCR (qRT-PCR) and western blot. Molecular docking results showed that AE could successfully dock with all the targets of NF-κB and P53 pathways, and the docking scores of most of the targets were equal to or higher than that of the corresponding ligands. Pathological sections showed AE could cause zebrafish liver lesions and the result of Sudan black B staining revealed that AE blackened the liver of zebrafish with Sudan black B. Then TUNEL assay showed that a large number of dense apoptotic signals were observed in AE group, mainly distributed in the liver and yolk sac of zebrafish. The results of qRT-PCR and western blot showed that AE increased the mRNA and protein expression levels of pro-inflammatory and pro-apoptotic targets in NF-κB and P53 pathways. AE could activate the NF-κB inflammatory pathway and the P53 apoptosis pathway, and its hepatotoxic mechanism was related to activation of NF-κB-P53 inflammation-apoptosis pathways.
Insights
Aloe emodin (AE) causes liver damage by activating the NF-κB inflammatory and P53 apoptosis pathways. This study used molecular docking and zebrafish models to confirm AE
Area of Science:
- Hepatotoxicity research
- Molecular pharmacology
- Toxicology
Background:
- Aloe emodin (AE) is a compound with potential therapeutic applications.
- Understanding the toxicological profile of AE, particularly its hepatotoxicity, is crucial.
Purpose of the Study:
- To investigate the hepatotoxic effects of aloe emodin (AE).
- To elucidate the underlying molecular mechanisms of AE-induced liver injury.
- To explore the role of NF-κB and P53 pathways in AE hepatotoxicity.
Main Methods:
- Molecular docking simulations were performed to assess AE's interaction with NF-κB and P53 pathway targets.
- Zebrafish (Tg (fabp10: EGFP)) were used as an in vivo model to study AE's effects.
- Histopathological analysis, Sudan black B staining, TUNEL assay, qRT-PCR, and western blotting were employed to evaluate liver damage, inflammation, apoptosis, and pathway activation.
Main Results:
- Molecular docking indicated strong binding affinity of AE to targets in the NF-κB and P53 pathways.
- AE induced significant liver lesions, inflammation, and apoptosis in zebrafish.
- AE upregulated the expression of pro-inflammatory and pro-apoptotic genes and proteins within the NF-κB and P53 pathways.
Conclusions:
- Aloe emodin (AE) exerts hepatotoxic effects by activating the NF-κB inflammatory pathway and the P53 apoptosis pathway.
- The observed hepatotoxicity is mediated through the interconnected NF-κB-P53 inflammation-apoptosis signaling cascade.
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