甲状腺间变性癌
顺铂
癌症研究
DNA损伤
癌细胞
瓦博格效应
DNA修复
化学
糖酵解
细胞凋亡
重编程
癌症
甲状腺癌
生物
细胞生物学
生物化学
细胞
DNA
化疗
新陈代谢
遗传学
作者
Zongfu Pan,Xixuan Lu,Xi Hu,Ruixi Yu,Yulu Che,Jie Wang,Xiao Lin,Jianqiang Chen,Xiaofen Yi,Zhuo Tan,Fangyuan Li,Daishun Ling,Ping Huang,Minghua Ge
标识
DOI:10.1016/j.jconrel.2024.03.057
摘要
Cancer cells rely on aerobic glycolysis and DNA repair signals to drive tumor growth and develop drug resistance. Yet, fine-tuning aerobic glycolysis with the assist of nanotechnology, for example, dampening lactate dehydrogenase (LDH) for cancer cell metabolic reprograming remains to be investigated. Here we focus on anaplastic thyroid cancer (ATC) as an extremely malignant cancer with the high expression of LDH, and develop a pH-responsive and nucleus-targeting platinum nanocluster (Pt@TAT/sPEG) to simultaneously targets LDH and exacerbates DNA damage. Pt@TAT/sPEG effectively disrupts LDH activity, reducing lactate production and ATP levels, and meanwhile induces ROS production, DNA damage, and apoptosis in ATC tumor cells. We found Pt@TAT/sPEG also blocks nucleotide excision repair pathway and achieves effective tumor cell killing. In an orthotopic ATC xenograft model, Pt@TAT/sPEG demonstrates superior tumor growth suppression compared to Pt@sPEG and cisplatin. This nanostrategy offers a feasible approach to simultaneously inhibit glycolysis and DNA repair for metabolic reprogramming and enhanced tumor chemotherapy.
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