Zong Xia, Xu Xinran, Pang Dai-Wen, Huang Xinglu, Liu An-An
State Key Laboratory of Medicinal Chemical Biology, Tianjin Key Laboratory of Biosensing and Molecular Recognition, Research Center for Analytical Sciences, College of Chemistry, Nankai University, Tianjin, 300071, P. R. China.
Key Laboratory of Bioactive Materials for the Ministry of Education, College of Life Sciences, State Key Laboratory of Medicinal Chemical Biology, and Frontiers Science Center for Cell Responses, Nankai University, Tianjin, 300071, P. R. China.
Adv Healthc Mater. 2025 Mar;14(8):e2401836. doi: 10.1002/adhm.202401836. Epub 2024 Jul 17.
Nanozymes, with their versatile composition and structural adaptability, present distinct advantages over natural enzymes including heightened stability, customizable catalytic activity, cost-effectiveness, and simplified synthesis process, making them as promising alternatives in various applications. Recent advancements in nanozyme research have shifted focus from serendipitous discovery toward a more systematic approach, leveraging machine learning, theoretical calculations, and mechanistic explorations to engineer nanomaterial structures with tailored catalytic functions. Despite its pivotal role, electron transfer, a fundamental process in catalysis, has often been overlooked in previous reviews. This review comprehensively summarizes recent strategies for modulating electron transfer processes to fine-tune the catalytic activity and specificity of nanozymes, including electron-hole separation and carrier transfer. Furthermore, the bioapplications of these engineered nanozymes, including antimicrobial treatments, cancer therapy, and biosensing are also introduced. Ultimately, this review aims to offer invaluable insights for the design and synthesis of nanozymes with enhanced performance, thereby advancing the field of nanozyme research.
纳米酶具有多样的组成和结构适应性,与天然酶相比具有明显优势,包括更高的稳定性、可定制的催化活性、成本效益以及简化的合成过程,使其成为各种应用中有前景的替代品。纳米酶研究的最新进展已从偶然发现转向更系统的方法,利用机器学习、理论计算和机理探索来设计具有定制催化功能的纳米材料结构。尽管电子转移在催化中起着关键作用,但在以往的综述中常常被忽视。本综述全面总结了调节电子转移过程以微调纳米酶催化活性和特异性的最新策略,包括电子 - 空穴分离和载流子转移。此外,还介绍了这些工程纳米酶的生物应用,包括抗菌治疗、癌症治疗和生物传感。最终,本综述旨在为设计和合成具有更高性能的纳米酶提供宝贵见解,从而推动纳米酶研究领域的发展。