Jia Xiuna, Wang Erkang, Wang Jin
State Key Laboratory of Electroanalytical Chemistry, Changchun Institute of Applied Chemistry, Chinese Academy of Sciences, Changchun, Jilin 130022, P. R. China.
Center for Theoretical Interdisciplinary Sciences Wenzhou Institute, University of Chinese Academy of Sciences, Wenzhou, Zhejiang 325001, P. R. China.
Chem Rev. 2025 Mar 12;125(5):2908-2952. doi: 10.1021/acs.chemrev.4c00882. Epub 2025 Jan 27.
Nanozymes have shown significant potential in cancer catalytic therapy by strategically catalyzing tumor-associated substances and metabolites into toxic reactive oxygen species (ROS) , thereby inducing oxidative stress and promoting cancer cell death. However, within the complex tumor microenvironment (TME), the rational design of nanozymes and factors like activity, reaction substrates, and the TME itself significantly influence the efficiency of ROS generation. To address these limitations, recent research has focused on exploring the factors that affect activity and developing nanozyme-based cascade catalytic systems, which can trigger two or more cascade catalytic processes within tumors, thereby producing more therapeutic substances and achieving efficient and stable cancer therapy with minimal side effects. This area has shown remarkable progress. This Perspective provides a comprehensive overview of nanozymes, covering their classification and fundamentals. The regulation of nanozyme activity and efficient strategies of rational design are discussed in detail. Furthermore, representative paradigms for the successful construction of cascade catalytic systems for cancer treatment are summarized with a focus on revealing the underlying catalytic mechanisms. Finally, we address the current challenges and future prospects for the development of nanozyme-based cascade catalytic systems in biomedical applications.
纳米酶通过将肿瘤相关物质和代谢产物策略性地催化为有毒的活性氧(ROS),在癌症催化治疗中显示出巨大潜力,从而诱导氧化应激并促进癌细胞死亡。然而,在复杂的肿瘤微环境(TME)中,纳米酶的合理设计以及活性、反应底物和TME本身等因素会显著影响ROS生成的效率。为了解决这些限制,近期的研究集中在探索影响活性的因素以及开发基于纳米酶的级联催化系统,该系统可在肿瘤内触发两个或更多级联催化过程,从而产生更多治疗物质,并以最小的副作用实现高效稳定的癌症治疗。这一领域已取得显著进展。本综述全面概述了纳米酶,涵盖其分类和基本原理。详细讨论了纳米酶活性的调控和合理设计的有效策略。此外,总结了成功构建用于癌症治疗的级联催化系统的代表性范例,重点揭示其潜在的催化机制。最后,我们阐述了基于纳米酶的级联催化系统在生物医学应用开发中的当前挑战和未来前景。
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