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Human papillomavirus (HPV) is the etiological agent of cervical cancer; however, the mechanisms underlying HPV-mediated carcinogenesis remain poorly understood. Here, we showed that nuclear receptor related-1 protein (Nurr1) was upregulated in primary cervical cancer tissue-derived spheroid cells and HPV-positive cell lines, and Nurr1 upregulation was correlated with cancer grade. Nurr1 promoted cell proliferation, migration, invasion, and anchorage-independent cell growth. In addition to its effect on cancer aggressiveness, Nurr1 enhanced the self-renewal ability of cells in vitro and in vivo, underscoring the importance of Nurr1 in maintaining the stemness of cancer stem-like cells (CSLCs). Mechanistically, Nurr1 independently activated the MEK/ERK and PI3K/Akt/mTOR signaling cascades. The MEK inhibitor trametinib (GSK) and PI3K/mTOR dual inhibitor dactolisib (BEZ) were shown to abrogate Nurr1-augmented tumorigenesis by upregulating p21 and p27 expression and by suppressing MMP9 and KLF4 expression. We provided further evidence that BEZ, but not GSK, could abolish Nurr1-enhanced radioresistance, suggesting its potential value for radiosensitizing CSLCs in the clinical setting. This study highlights the unprecedented roles of Nurr1 and elucidates mechanisms by which Nurr1 promotes tumor progression and radioresistance, providing a novel therapeutic strategy for cervical cancer treatment.

Original publication

DOI

10.1016/j.canlet.2020.09.025

Type

Journal

Cancer Lett

Publication Date

28/01/2021

Volume

497

Pages

14 - 27

Keywords

Cancer aggressiveness, Cervical cancer, HPV, Nurr1, Radioresistance, Self-renewal, Animals, Apoptosis, Biomarkers, Tumor, Cell Proliferation, Female, Gene Expression Regulation, Neoplastic, Humans, Kruppel-Like Factor 4, Mice, Mice, Inbred BALB C, Mice, Nude, Mitogen-Activated Protein Kinase 1, Mitogen-Activated Protein Kinase 3, Neoplastic Stem Cells, Nuclear Receptor Subfamily 4, Group A, Member 2, Oncogene Proteins, Viral, Papillomaviridae, Papillomavirus Infections, Phosphatidylinositol 3-Kinases, Proto-Oncogene Proteins c-akt, Radiation Tolerance, Signal Transduction, Tumor Cells, Cultured, Uterine Cervical Neoplasms, Xenograft Model Antitumor Assays