纳米医学
癌症研究
封锁
药品
自噬
饥饿
药理学
医学
微泡
药物输送
程序性细胞死亡
胰腺癌
细胞毒性
联合疗法
胰腺导管腺癌
可药性
合成致死
缺氧(环境)
线粒体
药物发现
下调和上调
生物
化学
作者
Mingjie Song,Ziru Zhang,Xuan Pan,Xiaoyu Yang,Fenglin Xu,Zhenning Ye,Jianping Zhou,Qifeng Zhong,Yang Ding,Heng Zhang
标识
DOI:10.1002/adma.202519523
摘要
Starvation therapy targeting the metabolic vulnerability of pancreatic ductal adenocarcinoma (PDAC) holds great potential; however, analyses of clinical samples and orthotopic models reveal that its efficacy is undermined by lysosome-mediated metabolic compensation. To disrupt this metabolic adaptability, we herein engineer a homotypic membrane-camouflaged nanomedicine capable of hypoxia-responsive cascade drug release and enhanced tumor accumulation. The resulting nanomedicine performs a hypoxia-induced phase transition that first liberates glucose oxidase to intensify oxygen deprivation and subsequently triggers burst release of chloroquine. Such a design of self-amplified relay drug release ensures effective starvation induction and precise lysosomal alkalization, thereby shutting down lysosome-mediated nutrient recycling. In a xenograft orthotopic PDAC model, this nanomedicine achieves 9.75-fold increase in tumor accumulation, robust tumor inhibition of 92.8%, and an elevated survival rate of 80% with favorable biosafety. Collectively, our findings highlight lysosomal disruption as a therapeutic lever to potentiate starvation therapy and provide a clinically actionable nanoplatform to enhance metabolic interventions for other metabolically vulnerable malignancies.
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