纳米反应器
胰腺癌
化学
细胞内
氧化还原
细胞生物学
磷酸戊糖途径
癌细胞
生物化学
谷胱甘肽
氧化应激
肿瘤微环境
癌症研究
新陈代谢
癌症
活性氧
生物物理学
糖酵解
氧化磷酸化
代谢途径
吉西他滨
细胞骨架
抗氧化剂
胰腺肿瘤
细胞
胰腺
作者
Rui Fu,Qi Li,Guanzhong Zhao,Qi Gao,Huantong Chen,Khemayanto Hidayat,Jiaying Xu,Li‐Qiang Qin,C H Hu,Yu Chong,Su Hu
摘要
ABSTRACT Pancreatic cancer exhibits extensive metabolic reprogramming that supports rapid progression and therapeutic resistance, making metabolic vulnerabilities attractive targets for intervention. Here, a tumor microenvironment‐responsive nanoreactor (Pht@HMnO 2 ‐HA) is designed to induce disulfidptosis in pancreatic cancer through coordinated metabolic interference and redox catalysis. Following CD44‐mediated tumor targeting and cellular internalization, the nanoreactor's responsive self‐optimization within the tumor microenvironment enables localized release of phloretin, suppressing glucose uptake and pentose phosphate pathway activity and thereby limiting intracellular reducing‐power generation. In parallel, the nanoreactor consumes intracellular glutathione and amplifies oxidative stress via MnO 2 ‐mediated redox reactions, thereby depleting antioxidant defenses. Together, these processes impose reducing‐power deprivation and disrupt redox homeostasis, leading to cystine accumulation, disulfide stress, actin cytoskeleton collapse, and disulfidptosis in pancreatic cancer cells. Moreover, degradation‐associated Mn 2 + release provides activatable T1‐weighted MRI contrast, enabling noninvasive visualization of intratumoral nanoreactor activation and therapeutic progression. Collectively, this work establishes a theranostic nanoreactor that exploits coupled metabolic and redox vulnerabilities to induce disulfidptosis, offering a mechanistically grounded strategy for precision therapy in pancreatic cancer.
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