Li Dan, Fan Tuocen, Mei Xifan
College of Pharmacy, Jinzhou Medical University, 40 Songpo Rd, Jinzhou 121000, China.
Jinzhou Medical University, 40 Songpo Rd, Jinzhou 121000, China.
Nanoscale. 2023 Oct 12;15(39):15885-15905. doi: 10.1039/d3nr03327a.
Nanozymes have captured significant attention as a versatile and promising alternative to natural enzymes in catalytic applications, with wide-ranging implications for both diagnosis and therapy. However, the limited selectivity exhibited by many nanozymes presents challenges to their efficacy in diagnosis and raises concerns regarding their impact on the progression of disease treatments. In this article, we explore the latest innovations aimed at enhancing the selectivity of nanozymes, thereby expanding their applications in theranostic nanoplatforms. We place paramount importance on the critical development of highly selective nanozymes and present innovative strategies that have yielded remarkable outcomes in augmenting selectivities. The strategies encompass enhancements in analyte selectivity by incorporating recognition units, refining activity selectivity through the meticulous control of structural and elemental composition, integrating synergistic materials, fabricating selective nanomaterials, and comprehensively fine-tuning selectivity approaches such as surface modification, cascade nanozyme systems, and manipulation of external stimuli. Additionally, we propose optimized approaches to propel the further advancement of these tailored nanozymes while considering the limitations associated with existing techniques. Our ultimate objective is to present a comprehensive solution that effectively addresses the limitations attributed to non-selective nanozymes, thus unlocking the full potential of these catalytic systems in the realm of theranostics.
纳米酶作为催化应用中天然酶的一种多功能且有前景的替代品,已引起了广泛关注,对诊断和治疗都具有广泛的影响。然而,许多纳米酶表现出的有限选择性对其诊断功效提出了挑战,并引发了对其对疾病治疗进展影响的担忧。在本文中,我们探讨了旨在提高纳米酶选择性的最新创新,从而扩大其在治疗诊断纳米平台中的应用。我们高度重视高选择性纳米酶的关键发展,并介绍了在提高选择性方面取得显著成果的创新策略。这些策略包括通过引入识别单元提高分析物选择性、通过精心控制结构和元素组成优化活性选择性、整合协同材料、制备选择性纳米材料以及全面微调选择性方法,如表面修饰、级联纳米酶系统和外部刺激的操控。此外,我们提出了优化方法,以推动这些定制纳米酶的进一步发展,同时考虑到现有技术的局限性。我们的最终目标是提供一个全面的解决方案,有效解决非选择性纳米酶带来的局限性,从而释放这些催化系统在治疗诊断领域的全部潜力。
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