School of Medicine, Tongji University, Shanghai 200092, China.
Department of Thoracic Surgery, Shanghai Pulmonary Hospital, School of Medicine, Tongji University, Shanghai 200433, China.
Nanoscale. 2024 Apr 25;16(16):7786-7824. doi: 10.1039/d4nr00155a.
Nanozymes, as a type of nanomaterials with enzymatic catalytic activity, have demonstrated tremendous potential in cancer treatment owing to their unique biomedical properties. However, the heterogeneity of tumors and the complex tumor microenvironment pose significant challenges to the catalytic efficacy of traditional nanozymes. Drawing inspiration from natural enzymes, scientists are now using biomimetic design to build nanozymes from the ground up. This approach aims to replicate the key characteristics of natural enzymes, including active structures, catalytic processes, and the ability to adapt to the tumor environment. This achieves selective optimization of nanozyme catalytic performance and therapeutic effects. This review takes a deep dive into the use of these biomimetically designed nanozymes in cancer treatment. It explores a range of biomimetic design strategies, from structural and process mimicry to advanced functional biomimicry. A significant focus is on tweaking the nanozyme structures to boost their catalytic performance, integrating them into complex enzyme networks similar to those in biological systems, and adjusting functions like altering tumor metabolism, reshaping the tumor environment, and enhancing drug delivery. The review also covers the applications of specially designed nanozymes in pan-cancer treatment, from catalytic therapy to improved traditional methods like chemotherapy, radiotherapy, and sonodynamic therapy, specifically analyzing the anti-tumor mechanisms of different therapeutic combination systems. Through rational design, these biomimetically designed nanozymes not only deepen the understanding of the regulatory mechanisms of nanozyme structure and performance but also adapt profoundly to tumor physiology, optimizing therapeutic effects and paving new pathways for innovative cancer treatment.
纳米酶作为一种具有酶催化活性的纳米材料,由于其独特的生物医学特性,在癌症治疗方面显示出巨大的潜力。然而,肿瘤的异质性和复杂的肿瘤微环境对传统纳米酶的催化效果提出了重大挑战。受天然酶的启发,科学家们现在正在使用仿生设计从零开始构建纳米酶。这种方法旨在复制天然酶的关键特征,包括活性结构、催化过程以及适应肿瘤环境的能力。这实现了纳米酶催化性能和治疗效果的选择性优化。
本综述深入探讨了这些仿生设计的纳米酶在癌症治疗中的应用。它探讨了一系列仿生设计策略,从结构和过程模拟到先进的功能仿生。重点是调整纳米酶结构以提高其催化性能,将其整合到类似于生物系统中的复杂酶网络中,并调整功能,例如改变肿瘤代谢、重塑肿瘤环境和增强药物输送。
该综述还涵盖了专门设计的纳米酶在泛癌治疗中的应用,从催化治疗到对化疗、放疗和声动力治疗等传统方法的改进,具体分析了不同治疗组合系统的抗肿瘤机制。通过合理设计,这些仿生设计的纳米酶不仅加深了对纳米酶结构和性能调节机制的理解,还深刻适应了肿瘤生理学,优化了治疗效果,为创新癌症治疗开辟了新途径。
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