中心体
PLK1
细胞生物学
有丝分裂
中心体周期
激酶
微管
化学
生物
细胞凋亡
细胞周期
生物化学
作者
Ximing Shao,Zhihao Ding,Wenhua Zhou,Yanyan Li,Zhibin Li,Zhibin Li,Haodong Cui,Xian Lin,Guoli Cao,Binghua Cheng,Haiyan Sun,Ke Liu,Ke Liu,Danyi Lu,Shengyong Geng,Wenli Shi,Guofang Zhang,Qingle Song,Liang Chen,Guocheng Wang
标识
DOI:10.1038/s41565-021-00952-x
摘要
Although nanomaterials have shown promising biomedical application potential, incomplete understanding of their molecular interactions with biological systems prevents their inclusion into mainstream clinical applications. Here we show that black phosphorus (BP) nanomaterials directly affect the cell cycle's centrosome machinery. BP destabilizes mitotic centrosomes by attenuating the cohesion of pericentriolar material and consequently leads to centrosome fragmentation within mitosis. As a result, BP-treated cells exhibit multipolar spindles and mitotic delay, and ultimately undergo apoptosis. Mechanistically, BP compromises centrosome integrity by deactivating the centrosome kinase polo-like kinase 1 (PLK1). BP directly binds to PLK1, inducing its aggregation, decreasing its cytosolic mobility and eventually restricting its recruitment to centrosomes for activation. With this mechanism, BP nanomaterials show great anticancer potential in tumour xenografted mice. Together, our study reveals a molecular mechanism for the tumoricidal properties of BP and proposes a direction for biomedical application of nanomaterials by exploring their intrinsic bioactivities.
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