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Different Inhibition of Nrf2 by Two Keap1 Isoforms α and β to Shape Malignant Behaviour of Human Hepatocellular
Feilong Chen1,2,3, Mei Xiao1,3, Jing Feng1,2,3
1College of Bioengineering, Graduate School, Chongqing University, No. 174 Shazheng Street, Shapingba District, Chongqing 400044, China.
Abstract:
Nrf2 (nuclear factor E2-related factor 2, encoded by Nfe2l2) acts as a master transcriptional regulator in mediating antioxidant, detoxification, and cytoprotective responses against oxidative, electrophilic, and metabolic stress, but also plays a crucial role in cancer metabolism and multiple oncogenic pathways, whereas the redox sensor Keap1 functions as a predominant inhibitor of Nrf2 and, hence, changes in its expression abundance directly affect the Nrf2 stability and transcriptional activity. However, nuanced functional isoforms of Keap1 α and β have rarely been identified to date. Herein, we have established four distinct cell models stably expressing Keap1, Keap1β(Keap1, Keap1-Restored, and Keap1α-Restored aiming to gain a better understanding of similarities and differences of two Keap1 isoforms between their distinct regulatory profiles. Our experimental evidence revealed that although Keap1 and its isoforms are still localized in the cytoplasmic compartments, they elicited differential inhibitory effects on Nrf2 and its target HO-1. Furthermore, transcriptome sequencing unraveled that they possess similar but different functions. Such functions were further determined by multiple experiments in vivo (i.e., subcutaneous tumour formation in nude mice) and in vitro (e.g., cell cloning, infection, migration, wound healing, cell cycle, apoptosis, CAT enzymatic activity, and intracellular GSH levels). Of note, the results obtained from tumourigenesis experiments in xenograft model mice were verified based on the prominent changes in the PTEN signaling to the PI3K-AKT-mTOR pathways, in addition to substantially aberrant expression patterns of those typical genes involved in the EMT (epithelial-mesenchymal transition), cell cycle, and apoptosis.
Insights
Investigating Keap1 isoforms reveals distinct regulatory effects on the master antioxidant regulator Nrf2 (nuclear factor E2-related factor 2). These findings clarify Keap1
Area of Science:
- Molecular Biology
- Cellular Stress Response
- Cancer Biology
Background:
- Nrf2 (nuclear factor E2-related factor 2) is a key regulator of antioxidant and detoxification pathways.
- Keap1 is the primary inhibitor of Nrf2, influencing its stability and activity.
- Limited understanding exists regarding the distinct functions of Keap1 isoforms (α and β).
Purpose of the Study:
- To investigate the differential regulatory roles of Keap1 and its isoforms (Keap1α and Keap1β) on Nrf2.
- To elucidate the functional similarities and differences between Keap1 isoforms in cellular processes.
Main Methods:
- Establishment of cell models expressing Keap1, Keap1β, Keap1-Restored, and Keap1α-Restored.
- Transcriptome sequencing to analyze gene expression profiles.
- In vitro assays (cell cloning, migration, wound healing, cell cycle, apoptosis, enzymatic activity, GSH levels).
- In vivo subcutaneous tumor formation in nude mice (xenograft model).
Main Results:
- Keap1 and its isoforms exhibit differential inhibitory effects on Nrf2 and its target HO-1.
- Transcriptome analysis revealed similar yet distinct functions for Keap1 isoforms.
- In vivo and in vitro experiments demonstrated isoform-specific impacts on tumor formation, cell behavior, and redox balance.
- Tumorigenesis results correlated with altered PTEN signaling, PI3K-AKT-mTOR pathways, EMT, cell cycle, and apoptosis genes.
Conclusions:
- Distinct functional profiles of Keap1 isoforms impact Nrf2 regulation and cellular responses.
- Understanding Keap1 isoform functions is crucial for comprehending Nrf2-mediated pathways in stress and cancer.
- These findings provide insights into potential therapeutic targets in cancer metabolism and oncogenic pathways.
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