上睑下垂
化学
纳米技术
超分子化学
生物物理学
材料科学
三碘化物
钙
癌细胞
纳米载体
作者
Dan Wu,Jie Zhou,Yibin Cao,Kunmin Ping,Borui Zhao,Yi Yang,Chunyang Yu,Xinyang Yu,Shaolong Qi
摘要
ABSTRACT Cytomembrane‐puncturing gasdermin (GSDM)‐mediated pyroptosis activates antitumor immunity through the release of immunogenic cellular contents and proinflammatory cytokines. However, programmable and precise pyroptosis remains challenging due to the rigidity, inefficiency, and systemic toxicity of conventional inducers. Herein, a supramolecular thermal switch is engineered to enable precision pyroptosis induction. Triiodide ions (I 3 − ) are stabilized within β‐cyclodextrin ( β‐CD ) via host–guest recognition, enhancing payload efficiency and bioavailability, while calcium ions (Ca 2 + ), anchored on the periphery of β‐CD through electrostatic Ca 2 + /carboxylate interactions, nucleate CaCO 3 crystal growth. The resulting CaCO 3 matrix acts as a sustained Ca 2+ reservoir while preventing premature leakage of both Ca 2+ and I 3 − . In the acidic tumor microenvironment, CaCO 3 decomposes, enabling site‐specific release of I 3 − and Ca 2+ via a pH‐responsive disassembly mechanism. Under spatiotemporally controlled near‐infrared (NIR) laser irradiation, the boron dipyrromethene (BODIPY)‐based thermal switch is activated, converting biocompatible I 3 − into toxic iodine (I 2 ) and triggering a cascade of intracellular oxidative stress, mitochondrial damage and calcium buffer collapse. Synergizing with dysregulated Ca 2 + homeostasis, exogenous Ca 2 + burst induces Ca 2 + overload and cysteine‐aspartic acid protease‐3 (caspase‐3)/GSDME‐mediated pyroptosis, thereby connecting innate and adaptive immunity to inhibit tumor growth and metastasis. This supramolecular engineering strategy presents a promising approach for potentiating cancer immunotherapy.
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