癌症免疫疗法
催化作用
自催化
材料科学
癌症研究
葡萄糖氧化酶
免疫疗法
酶
氢氧化物
癌细胞
癌症
生物化学
组合化学
氧化还原
密度泛函理论
癌症治疗
代谢途径
细胞生长
生物物理学
活动站点
化学
过氧化氢酶
新陈代谢
信号转导
肿瘤微环境
碳水化合物代谢
细胞生物学
作者
Kai Song,Feiyu Zhao,Hongzhi Liu,Shan He,Mengfan Li,Minli Mo,Ye Fu,Rui Lu,Shuyun Zhou,Qing Yin,Shanyue Guan
摘要
ABSTRACT Glucose oxidase (GOx)−based therapy has emerged as a promising strategy for cancer treatment, yet its efficacy is constrained by limited active sites and suboptimal reaction kinetics. To address these challenges, we designed a ruthenium (Ru)–rhodium (Rh) alloy anchored on layered double hydroxide (denoted as RuRh@LDH) as an advanced nanozyme that concurrently mimics GOx‐ and catalase (CAT)−like activities. Unlike the traditional enzyme process, this RuRh@LDH initiates an alternative pathway by self−propelling catalytic cascade, where the O 2 produced by the CAT−like reaction directly fuels the GOx−like process, establishing an autocatalytic cycle that significantly enhances reaction kinetics, which was verified by the Density Functional Theory (DFT) calculations. As a result, RuRh@LDH exhibits exceptional catalytic efficiency attributable to the synergistic electronic interaction within the alloy structure and the dual heat and mass transfer pathways between adjacent catalytic sites. The self−sustaining reaction leads to rapid glucose depletion, disrupting both energy metabolism and redox homeostasis, and ultimately triggering disulfidptosis. Finally, RuRh@LDH suppressed tumor growth and promoted T cell infiltration, showing potent antitumor and immune‐activating effects. This work establishes a self‐accelerating alloy nanozyme, representing a paradigm shift in enzyme‐mimetic therapy for sustainable metabolic intervention in cancer.
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