Reactivation of methylation‐silenced PAX1 inhibits cervical cancer proliferation and migration via the WNT/TIMELESS pathway

生物 永恒的 Wnt信号通路 癌症研究 DNA甲基化 甲基化 癌症 细胞生物学 信号转导 遗传学 基因 神经科学 基因表达 昼夜节律
作者
Wenfan Zhang,Huixi Wang,Shuang Chen,Xueting Fan,Yuqing Liu,Shujuan Shi,Rong Wang
出处
期刊:Molecular Carcinogenesis [Wiley]
卷期号:63 (7): 1349-1361 被引量:1
标识
DOI:10.1002/mc.23728
摘要

Although aberrant methylation of PAX1 is closely associated with cervical cancer (CC), PAX1 methylation (PAX1m) and its role in CC remain to be elucidated. Here, we clarified the biological function of PAX1 in CC. First, PAX1m in ThinPrep cytologic test samples was measured via quantitative methylation-specific PCR. The results showed that PAX1 promoter methylation levels were significantly increased in CC patients (p < 0.001). We also found that PAX1 promoter methylation levels were positively correlated with tumor purity but negatively correlated with immune-infiltration via public databases. Then, CRISPR-based methylation perturbation tools (dCas9-Tet1) were constructed to further demonstrate that DNA methylation participates in the regulation of PAX1 expression directly. Gain- and loss-of-function experiments were used to show that PAX1 overexpression restrained proliferation, migration and improved cisplatin sensitivity by interfering with the WNT/TIMELESS axis in CC cells. Additionally, Co-immunoprecipitation assays further confirmed the interaction between PAX1 and TCF7L2. Taken together, our results suggested that a tumor suppressor role of PAX1 in CC and that CRISPR-based PAX1 demethylation editing might be a promising therapeutic strategy for CC.

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