Qian Luo, Jiaying Yang, Hailin Yin, Mei Yang, Yueyang Liang, Yixuan Hou, Xinze Sun, Jixuan Liu, Ling Zhang
Nuclear receptor coactivator 3 (NCOA3) is associated with various cancers, but its function and mechanism in glioblastoma multiforme (GBM) are still unclear. Bioinformatics analysis, in vitro cell experiments (NCOA3 silencing (si-NCOA3) or NCOA3 small-molecule inhibitor SI-2), in vivo animal models, and metabolic level detection were used to elucidate the activity of NCOA3 in GBM. The data revealed that GBM tissues had NCOA3 overexpression, which was linked with poor prognosis. It regulates pathways related to glycolysis, the cell cycle, and immunosuppression. Functionally, si-NCOA3/SI-2 suppressed GBM cell proliferation and migration. In vivo, sh-NCOA3/SI-2 demonstrated anti-glioma effects. Metabolically, treatment with si-NCOA3/SI-2 reduced glucose uptake, pyruvate and lactate production, ATP levels, and glycolysis-related enzyme expression in GBM cells. Combination therapy with SI-2 and TMZ enhanced GBM cell sensitivity to TMZ. Single-cell RNA sequencing revealed high NCOA3 expression in glioma stem cells (GSCs). si-NCOA3 inhibited GSCs proliferation and self-renewal while reducing the expression of Nestin and SOX2. NCOA3 is an oncogene in GBM. In mechanism, NCOA3 promotes GBM progression by enhancing the Warburg effect. In addition, NCOA3 is also highly expressed in GSCs and significantly promotes their proliferation and self-renewal ability. NCOA3 may represent a promising therapeutic target for GBM.