State Key Laboratory of Chemo/Biosensing and Chemometrics, College of Chemistry and Chemical Engineering, Hunan University, Changsha, 410082, P. R. China.
Angew Chem Int Ed Engl. 2021 Apr 19;60(17):9562-9572. doi: 10.1002/anie.202014415. Epub 2021 Mar 17.
Chemodynamic therapy is an emerging tumor therapeutic strategy. However, the anticancer effects are greatly limited by the strong acidity requirements for effective Fenton-like reaction, and the inevitably "off-target" toxicity. Herein, we develop an acidity-unlocked nanoplatform (FePt@FeO @TAM-PEG) that can accurately perform the high-efficient and tumor-specific catalysis for anticancer treatment, through dual pathway of cyclic amplification strategy. Notably, the pH-responsive peculiarity of tamoxifen (TAM) drug allows for the catalytic activity of FePt@FeO to be "turn-on" in acidic tumor microenvironments, while keeping silence in neutral condition. Importantly, the released TAM within cancer cells is able to inhibit mitochondrial complex I, leading to the upregulated lactate content and thereby the accumulated intracellular H , which can overcome the intrinsically insufficient acidity of tumor. Through the positive feedback loop, large amount of active FePt@FeO nanocatalyzers are released and able to access to the endogenous H O , exerting the improved Fenton-like reaction within the more acidic condition. Finally, such smart nanoplatform enables self-boosting generation of reactive oxygen species (ROS) and induces strong intracellular oxidative stress, leading to the substantial anticancer outcomes in vivo, which may provide a new insight for tumor-specific cascade catalytic therapy and reducing the "off-target" toxicity to surrounding normal tissues.
化学动力学治疗是一种新兴的肿瘤治疗策略。然而,其抗癌效果受到有效芬顿样反应所需的强酸性条件的极大限制,并且不可避免地存在“脱靶”毒性。在此,我们通过双途径循环放大策略,开发了一种能够在酸性肿瘤微环境中准确进行高效和肿瘤特异性催化抗癌治疗的酸度解锁纳米平台(FePt@FeO@TAM-PEG)。值得注意的是,他莫昔芬(TAM)药物的 pH 响应特性使得 FePt@FeO 的催化活性能够在酸性肿瘤微环境中“开启”,而在中性条件下保持沉默。重要的是,在癌细胞内释放的 TAM 能够抑制线粒体复合物 I,导致乳酸含量上调,从而积累细胞内 H+,从而克服肿瘤内在的酸度不足。通过正反馈循环,大量活性 FePt@FeO 纳米催化剂被释放出来,并能够进入内源性 H2O2,在更酸性的条件下发挥改进的芬顿样反应。最后,这种智能纳米平台能够自我增强活性氧(ROS)的生成,并诱导强烈的细胞内氧化应激,从而在体内产生显著的抗癌效果,这可能为肿瘤特异性级联催化治疗提供新的见解,并降低对周围正常组织的“脱靶”毒性。