胶质瘤
细胞生物学
机械转化
少突胶质细胞
化学
旁分泌信号
硫酸软骨蛋白多糖
神经科学
蛋白多糖
神经退行性变
生物
血管生成
去极化
信号转导
星形胶质细胞
细胞粘附分子
神经胶质
祖细胞
焦点粘着
胶质瘢痕
软骨素
细胞迁移
作者
Yoon Seok Kim,Shawn Gillespie,Anna C. Geraghty,Belgin Yalçın,Alexis E. Ivec,Aerin Yang,Rebecca Mancusi,Jared Hysinger,James Reed,Richard Drexler,Michael Quezada,Karen Malacon,Pamelyn Woo,Youkyeong Gloria Byun,Christopher Mount,Mable Lam,Yuan Pan,J. Bradley Zuchero,Jacqueline Trotter,Michelle Monje
标识
DOI:10.1038/s41593-026-02397-8
摘要
Glioma pathophysiology is robustly regulated by interactions with neurons. Key to these interactions is the role of neuroligin-3 (NLGN3), a synaptic adhesion molecule shed in response to neuronal activity that functions as a paracrine factor crucial for glioma growth. Here we elucidate the mechanistic pathway whereby shed NLGN3 interacts with glioma and their normal glial counterparts. NLGN3 binds to chondroitin sulfate proteoglycan 4 (CSPG4, also known as NG2) on both glioma and healthy oligodendrocyte precursor cells (OPCs), facilitating CSPG4 shedding by ADAM10. NLGN3–CSPG4 interactions alter membrane tension, thereby activating mechanotransducers, primarily PIEZO1, leading to membrane depolarization and subsequent ADAM10-mediated CSPG4 shedding. The NLGN3–CSPG4–PIEZO1 pathway maintains OPCs in an undifferentiated, stem-like state and promotes glioma proliferation, underscoring its dual roles in healthy and malignant contexts. This study finds that shed NLGN3 interacts with the glycosylated surface protein CSPG4 on both normal and malignant glial cells, activating mechanotransduction pathways that drive glioma growth and maintain oligodendroglial progenitor states.
科研通智能强力驱动
Strongly Powered by AbleSci AI