Hu Pengcheng, Zheng Jilu, Wang Hongjuan, Li Yongxin, Ye Tao, Li Quanjun, Lan Xiaopeng, Liu Chunzhao, Liu Chunlei
Department of Urology, Department of Primary Healthcare, Department of Cardiology, Qingdao Central Hospital, University of Health and Rehabilitation Sciences, Qingdao, 266071, People's Republic of China.
College of Materials Science and Engineering, Qingdao University, Qingdao, 266071, People's Republic of China.
Int J Nanomedicine. 2025 Feb 15;20:2043-2057. doi: 10.2147/IJN.S496831. eCollection 2025.
Natural enzyme systems possess extraordinary functions and characteristics, making them highly appealing for use in eco-friendly technologies and innovative cancer treatments. However, their inherent instability and structural complexity often limit their practical applications, leading to the exploration of biomolecular nanozyme alternatives. Supramolecular nanozymes, constructed using self-assembly techniques and various non-covalent interactions, have emerged as a promising solution. Amino acids, peptides, and protein motifs offer flexible building blocks for constructing these nanozymes. Importantly, the well-defined structural regulation mechanisms of biomolecular nanozymes, along with their unique properties as fundamental biological modules in living systems-such as selectivity, permeability, retention, and biocompatibility-present new opportunities for cancer therapy. This review highlights recent advances in supramolecular self-assembled nanozymes, including peroxidases, oxidases, catalases, superoxide dismutases, and other nanozyme systems, as building blocks for tumor therapy. Additionally, it discusses precise functional modulation through supramolecular non-covalent interactions and their therapeutic applications in targeting the tumor microenvironment. These studies provide valuable insights that may inspire the design of novel supramolecular nanozymes with enhanced catalytic selectivity, biocompatibility, and tumor-killing efficacy.
天然酶系统具有非凡的功能和特性,使其在环保技术和创新癌症治疗中极具吸引力。然而,其固有的不稳定性和结构复杂性常常限制其实际应用,从而促使人们探索生物分子纳米酶替代品。利用自组装技术和各种非共价相互作用构建的超分子纳米酶已成为一种有前景的解决方案。氨基酸、肽和蛋白质基序为构建这些纳米酶提供了灵活的构建模块。重要的是,生物分子纳米酶明确的结构调控机制,以及它们作为生命系统中基本生物模块所具有的独特性质,如选择性、渗透性、滞留性和生物相容性,为癌症治疗带来了新机遇。本综述重点介绍了超分子自组装纳米酶的最新进展,包括过氧化物酶、氧化酶、过氧化氢酶、超氧化物歧化酶和其他纳米酶系统,作为肿瘤治疗的构建模块。此外,还讨论了通过超分子非共价相互作用进行的精确功能调节及其在靶向肿瘤微环境中的治疗应用。这些研究提供了有价值的见解,可能会激发新型超分子纳米酶的设计,使其具有更高的催化选择性、生物相容性和肿瘤杀伤功效。