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WSB1 Regulates c-Myc Expression Through β-catenin Signaling and Forms a Feedforward Circuit Promoting the Development of Cancer.

Cao, J.; Gao, X.; Gong, Y.; You, J.; Yuan, M.; Zhu, H.; Fang, L.; Ying, M.; Zhu, H.; He, Q.; Yang, B.

2020-09-25 molecular biology
10.1101/2020.09.25.312678 bioRxiv
Show abstract

The dysregulation of transcription factors is widely associated with tumorigenesis. As the most well-defined transcription factor in multiple types of cancer, c-Myc can directly transform cells by transactivating various downstream genes. Given that there is no effective way to directly inhibit c-Myc, c-Myc targeting strategies based on its regulatory mechanism hold great potential for cancer therapy. In this study, we found that WSB1, a direct target gene of c-Myc, can positively regulate c-Myc expression, which forms a feedforward circuit promoting cancer development. Luciferase-based promoter activity assays and RNA sequencing results confirmed that WSB1 promoted c-Myc expression through the {beta}-catenin pathway. Mechanistically, WSB1 affected {beta}-catenin destruction complex-PPP2CA assembly and E3 ubiquitin ligase adaptor {beta}-TRCP recruitment, which inhibited the ubiquitination of {beta}-catenin and subsequently transactivated c-Myc. Of interest, the promoting effect of WSB1 on c-Myc was independent of its E3 ligase activity. Moreover, co-expression of WSB1 and c-Myc strongly enhanced the initiation and progression of tumours both in vitro and in vivo. Thus, our findings revealed a novel mechanism involved in tumorigenesis in which the WSB1/c-Myc feedforward circuit played an essential role, highlighting a potential c-Myc intervention strategy in cancer treatment.

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