HIF-1–mediated PPME1 expression promotes breast cancer progression via AKT activation and β-catenin recruitment
Yajing Lyu, Varen Talwar, Yongkang Yang, Si-Sim Kang, Shuyi Li, Shaima Salman, Daiana Drehmer, Yufeng Wang, Chelsey Chen, Vijay Ramu, Sujin Kim, Dylan Park, Tina Yi-Ting Huang, Emmanuel Datan, Dominic Dordai, Jonathan P. Schneck, Gregg L. SemenzaHypoxia-inducible factor 1 (HIF-1) orchestrates the transcriptional regulation of thousands of genes involved in breast cancer (BC) progression. Here, we identified protein phosphatase 2A (PP2A) methylesterase 1 ( PPME1 ) as a critical HIF-1 target gene that drives oncogenic signaling under hypoxic conditions. In BC cells, HIF-1–dependent PPME1 expression caused inhibition of the PP2A catalytic subunit (PP2Ac), thereby diminishing PP2A activity, which led to AKT activation, phosphorylation of β-catenin, and its nuclear translocation. Nuclear β-catenin cooperates with HIF-1 to promote BC stem cell specification by activating transcription of the NANOG and KLF4 genes, which encode pluripotency factors, and to drive immune evasion by activating transcription of VEGFA , which recruits and polarizes immunosuppressive tumor-associated macrophages and ISG20 , which represses STAT1/IRF1-dependent expression of CXCL10 , thereby impairing CD8 + T cell recruitment. In vivo, PPME1 knockdown altered the tumor immune microenvironment, enhanced antitumor immunity, and synergized with anti–CTLA-4 immunotherapy to enable complete tumor eradication. These findings establish PPME1 as a critical regulator linking hypoxia signaling, stemness, and immune evasion and highlight its potential as a BC therapeutic target in combination with immune checkpoint blockade.