4.7 Article

Analysis of the roles of the Notch1 signalling pathway in modulating deoxynivalenol cytotoxicity

期刊

出版社

ACADEMIC PRESS INC ELSEVIER SCIENCE
DOI: 10.1016/j.ecoenv.2022.114183

关键词

Deoxynivalenol; Notch1; Toxicity; MAPK; Oxidative damage

资金

  1. College Students?
  2. Innovation and Entrepreneurship Training Program of Jiangsu Province
  3. Key Research and Development Project (Modern Agriculture) of Jiangsu Province
  4. Seed Industry Vitaliza-tion Research Projects of Jiangsu Province
  5. Priority Academic Program Development of Jiangsu Higher Education Institutions
  6. [KYCX22_3530]
  7. [BE2019341]
  8. [JBGS [2021] 098]

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This study investigates the role of the Notch1 signaling pathway in protecting against DON exposure. Inhibiting Notch1 signaling increases oxidative stress, cell apoptosis, reduces autophagy, and exacerbates cell inflammation after DON exposure. The findings provide a basis for further research on the mechanism of DON.
Deoxynivalenol (DON) is a trichothecenes produced by fungi that is widespread and poses a threat to human and animal health. The Notch1 signalling pathway is tightly involved in cell fate determination. The aim of this study was to investigate the role of the Notch1 signalling pathway in DON exposure. Herein, we found that the Notch1 signalling pathway was significantly activated after DON exposure, while Notch1 expression was negatively regulated by DON-induced ROS. Then, the Notch1 signalling pathway was blocked by the gamma-secretase inhibitor DAPT in DON exposure. Flow cytometry analysis and antioxidant parameter measurements revealed that DAPT treatment significantly aggravated the oxidative stress induced by DON. The detection of apoptosis showed that DAPT treatment increased the cell apoptotic rate. Further analysis revealed that inhibiting the Notch1 signalling pathway reduced autophagy upon DON exposure. RT-qPCR and Western blot analysis showed that inhibiting the Notch1 signalling pathway aggravated cellular inflammation and activated the MAPK pathway, indicating that the MAPK pathway may be the downstream signalling pathway. Taken together, our research revealed that the Notch1 signalling pathway is essential for protection against DON. Inhibition of Notch1 signalling increases oxidative stress, causes cell apoptosis, reduces autophagy and aggravates cell inflammation after DON exposure. This study investigated the role of the Notch1 signalling pathway in DON exposure and provided a basis for exploring the mechanism of DON.

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