Notch信号通路
下调和上调
癌症研究
炎症
化学
细胞生物学
生物
信号转导
免疫学
生物化学
基因
作者
Lei Chen,Heng Lu,Dunfa Peng,Long Long Cao,Farah Ballout,Kannappan Srirmajayam,Zheng Chen,Ajaz A. Bhat,Yichen Wang,Anthony J. Capobianco,Jianwen Que,Oliver G. McDonald,Alexander Zaika,Shutian Zhang,Wael El-Rifai
出处
期刊:Gut
[BMJ]
日期:2022-06-24
卷期号:72 (3): 421-432
被引量:10
标识
DOI:10.1136/gutjnl-2022-327076
摘要
Objective Oesophageal adenocarcinoma (EAC) arises in the setting of Barrett’s oesophagus, an intestinal metaplastic precursor lesion that can develop in patients with chronic GERD. Here, we investigated the role of acidic bile salts, the mimicry of reflux, in activation of NOTCH signaling in EAC. Design This study used public databases, EAC cell line models, L2-IL1β transgenic mouse model and human EAC tissue samples to identify mechanisms of NOTCH activation under reflux conditions. Results Analysis of public databases demonstrated significant upregulation of NOTCH signaling components in EAC. In vitro studies demonstrated nuclear accumulation of active NOTCH1 cleaved fragment (NOTCH intracellular domain) and upregulation of NOTCH targets in EAC cells in response to reflux conditions. Additional investigations identified DLL1 as the predominant ligand contributing to NOTCH1 activation under reflux conditions. We discovered a novel crosstalk between APE1 redox function, reflux-induced inflammation and DLL1 upregulation where NF-κB can directly bind to and induce the expression of DLL1. The APE1 redox function was crucial for activation of the APE1-NF-κB-NOTCH axis and promoting cancer cell stem-like properties in response to reflux conditions. Overexpression of APE1 and DLL1 was detected in gastro-oesophageal junctions of the L2-IL1ß transgenic mouse model and human EAC tissue microarrays. DLL1 high levels were associated with poor overall survival in patients with EAC. Conclusion These findings underscore a unique mechanism that links redox balance, inflammation and embryonic development (NOTCH) into a common pro-tumorigenic pathway that is intrinsic to EAC cells.
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