Genetic alterations of Keap1 confers chemotherapeutic resistance through functional activation of Nrf2 and Notch pathway in head and neck squamous cell carcinoma

Author:

Islam Syed1,Qassem Khawlah1,Islam Shafiqul2,Parag Rashed2,Rahman Mohammad3,Farhat Walid4,Yeger Herman5,aboussekhra Abdelilah6ORCID,Karakas Bedri1,Noman Abu Shadat7

Affiliation:

1. King Faisal Specialist Hospital and Research Centre

2. University of Chittagong

3. Chittagong Medical College and Hospital

4. University of Wisconsin School of medicine and public health

5. The Hospital for Sick Children, Toronto, Canada

6. King Faisal Specialist Hospital & Research Centre

7. McGill University

Abstract

Abstract Keap1 mutations regulate Nrf2 activity and lead to chemoresistance in cancers. Yet the underlying molecular mechanisms of chemoresistance are poorly explored. By focusing and genotyping head and neck squamous cell carcinoma (HNSCC) that had available pathologic and clinical data, we provide evidence that Keap1 displays frequent alterations (17%) in HNSCC. Functional loss of Keap1 results in significant activation of Nrf2 and promotes cancer cell growth, proliferation, and elevated cancer stem cell (CSCs) self-renewal efficiency and resistance to oxidative stress. Furthermore, decreased Keap1 activity in these cells increased nuclear accumulation of Nrf2 and activation of the Notch pathway, causing enhanced transcriptional alterations of antioxidants, xenobiotic metabolism enzymes, and resistance to chemotherapeutic treatment. Limiting the Nrf2 activity by either Keap1 complementation or by Nrf2 silencing increased the sensitivity to chemotherapy in Keap1-mutated cells and repressed the CSC self-renewal activity. Our findings suggest that Keap1 mutations define a distinct disease phenotype and the Keap1-Nrf2 pathway is one of the leading molecular mechanisms for clinical chemotherapeutic resistance. Targeting this pathway may provide a potential and attractive personalized treatment strategy for overcoming chemotherapeutic resistance conferred by Keap1 mutations.

Publisher

Research Square Platform LLC

Reference55 articles.

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