Laboratory of Chemical Biology and State Key Laboratory of Rare Earth Resource Utilization, Changchun Institute of Applied Chemistry, Chinese Academy of Sciences, Changchun, Jilin, 130022, P. R. China.
School of Applied Chemistry and Engineering, University of Science and Technology of China, Hefei, Anhui, 230026, P. R. China.
Adv Mater. 2024 Oct;36(41):e2405318. doi: 10.1002/adma.202405318. Epub 2024 Aug 16.
Bioorthogonal chemistry has provided an elaborate arsenal to manipulate native biological processes in living systems. As the great advancement of nanotechnology in recent years, bioorthogonal nanozymes are innovated to tackle the challenges that emerged in practical biomedical applications. Bioorthogonal nanozymes are uniquely positioned owing to their advantages of high customizability and tunability, as well as good adaptability to biological systems, which bring exciting opportunities for biomedical applications. More intriguingly, the great advancement in nanotechnology offers an exciting opportunity for innovating bioorthogonal catalytic materials. In this comprehensive review, the significant progresses of bioorthogonal nanozymes are discussed with both spatiotemporal controllability and high performance in living systems, and highlight their design principles and recent rapid applications. The remaining challenges and future perspectives are then outlined along this thriving field. It is expected that this review will inspire and promote the design of novel bioorthogonal nanozymes, and facilitate their clinical translation.
生物正交化学为在活系统中操纵天然生物过程提供了精心设计的武器库。近年来,纳米技术的巨大进步创新了生物正交纳米酶,以应对实际生物医学应用中出现的挑战。生物正交纳米酶具有高度的可定制性和可调性、良好的生物系统适应性等优势,处于独特的地位,为生物医学应用带来了令人兴奋的机会。更有趣的是,纳米技术的巨大进步为创新生物正交催化材料提供了令人兴奋的机会。在这篇全面的综述中,讨论了生物正交纳米酶在活系统中具有时空可控性和高性能的重要进展,并强调了它们的设计原则和最近的快速应用。然后,沿着这个蓬勃发展的领域,概述了剩余的挑战和未来的展望。预计这篇综述将激发和促进新型生物正交纳米酶的设计,并促进其临床转化。