替莫唑胺
胶质母细胞瘤
癌症研究
DNA修复
DNA损伤
合成致死
体外
化学
U87型
信号转导
生物
体内
胶质瘤
恶性肿瘤
RAC1
肌动蛋白细胞骨架
细胞生物学
医学
CDC42型
细胞
DNA
细胞培养
DNA损伤修复
脑瘤
作者
Minglong Yang,Wanxiang Niu,Yuanfei Wang,Peng Chen,Maolin Mu,X. Zhang,Ben Xu,S. M. Hu,Chaoshi Niu,Pengfei Wu
标识
DOI:10.1002/advs.202513632
摘要
ABSTRACT Glioblastoma (GBM) is an aggressive and recurrent malignancy with a poor prognosis. Although temozolomide (TMZ) is a cornerstone of GBM treatment, its efficacy is often compromised by inherent or acquired resistance, underscoring the urgent need to uncover molecular mechanisms, discover new therapeutic targets, and develop innovative treatment strategies. In this study, we found an increased formation of filamentous actin (F‐actin) within the nuclei of TMZ‐resistant GBM cells. We also showed that overexpression of FSCN1 in TMZ‐resistant GBM cells promotes F‐actin formation and facilitates the repair of DNA double‐strand breaks (DSBs). Further investigation revealed a marked decrease in the expression of YTHDC1 in TMZ‐resistant GBM cells, which regulates FSCN1 through m6A modification. Additionally, FSCN1 activates the CDC42/N‐WASP/Arp2/3 signaling pathway by recruiting FGD1 to activate CDC42 GTP , which drives nuclear F‐actin formation. Importantly, combining the FSCN1 inhibitor NP‐G2‐044, with TMZ therapy resulted in stronger anti‐tumor effects both in vitro and in vivo. In conclusion, the study demonstrates that nuclear F‐actin formation in GBM promotes DSB repair and reveals that targeting FSCN1 with NP‐G2‐044 could be a promising strategy for enhancing treatment outcomes and improving the prognosis for GBM patients.
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