抗辐射性
SOX2
癌症研究
癌症干细胞
细胞生物学
肿瘤微环境
干细胞
转录因子
化学
下调和上调
癌细胞
胶质瘤
细胞
生物
KLF4公司
CD44细胞
KLF2
辐射敏感性
干细胞标记物
入侵足纲
细胞生长
体重指数1
基因表达调控
作者
Po Zhang,Weichi Wu,Tengfei Huang,Xujia Wu,D Wang,Huairui Yuan,Suchet Taori,Fanen Yuan,Frank P. Vendetti,R Wang,Tingting Duan,Hailong Mi,Huan Li,Kailin Yang,Daqi Li,Ahmed Habib,Briana C. Prager,Ryan C. Gimple,Pascal O. Zinn,Kalil Abdullah
标识
DOI:10.1038/s41467-026-74058-0
摘要
Drivers of therapeutic resistance in cancer include evolving tumor cell heterogeneity and the tumor microenvironment (TME). We find that increased matrix stiffness promotes radioresistance in glioblastoma (GBM) and maintains tumor cell hierarchies. Differential gene expression reveals that stiff matrices induce expression of IQGAP3 (IQ Motif Containing GTPase Activating Protein 3) through YAP1 and TEAD transcription factors in GBM stem cells (GSCs). IQGAP3 promotes GSC self-renewal and survival upon radiation treatment through binding and stabilization of core stem cell transcription factor, SOX2. Targeting IQGAP3 reduces SOX2 protein levels in vitro and in vivo, increasing GSC radiosensitivity and inhibiting tumor growth. Structure-function drug screening of FDA-approved agents blocking IQGAP3-SOX2 binding identifies trimetrexate as a brain penetrant pharmacologic disruptor of IQGAP3 function in radioresistance, sensitizing GSCs to radiotherapy. These results identify molecular underpinnings for biomechanical promotion of cancer stem cell maintenance and therapeutic resistance, informing therapeutic strategies to augment efficacy of radiotherapy. In glioblastoma, matrix stiffness has been linked to poor prognosis and resistance to therapy. Here, the authors demonstrate that matrix stiffness drives radioresistance via upregulation of IQGAP3 promoting cancer cell stemness via SOX2 stabilization and show that blocking this interaction resensitises glioblastoma cells to radiotherapy.
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