Lei Yanli, Yu Lihong, Yang Zeyang, Quan Ke, Qing Zhihe
Hunan Provincial Key Laboratory of Cytochemistry, School of Food and Bioengineering, School of Chemistry and Chemical Engineering, Changsha University of Science and Technology, Changsha, Hunan, 410114, China.
Chembiochem. 2024 Dec 16;25(24):e202400548. doi: 10.1002/cbic.202400548. Epub 2024 Oct 17.
Platinum (Pt) nanozymes with multiple intrinsic enzyme-mimicking activities have attracted extensive attention in biomedical fields due to their high catalytic activity, ease of modification, and convenient storage. However, the Pt nanozymes synthesized by the traditional method often suffer from uncontrollable morphology and poor stability under physicochemical conditions, resulting in unsatisfactory catalytic behavior in practical applications. To optimize the catalytic ability, biological templates have been introduced recently, which can guide the deposition of platinum ions on their surface to form specific morphologies and then stabilize the resulting Pt nanozymes. Given the promising potential of biotemplated Pt nanozymes in practical applications, it is essential to conduct a systematic and comprehensive review to summarize their recent research progress. In this review, we first categorize the biological templates and discuss the mechanisms as well as characteristics of each type of biotemplate in directing the growth of Pt nanozyme. Factors that impact the growth of biotemplated Pt nanozymes are then analyzed, followed by summarizing their biomedical applications. Finally, the challenges and opportunities in this field are outlined. This review article aims to provide theoretical guidance for developing Pt nanozymes with robust functionalities in biomedical applications.
具有多种内在类酶活性的铂(Pt)纳米酶因其高催化活性、易于修饰和储存方便等优点,在生物医学领域引起了广泛关注。然而,传统方法合成的Pt纳米酶通常存在形态不可控以及在物理化学条件下稳定性差的问题,导致其在实际应用中的催化性能不尽人意。为了优化催化能力,近年来引入了生物模板,它可以引导铂离子在其表面沉积形成特定形态,进而稳定所得的Pt纳米酶。鉴于生物模板法制备的Pt纳米酶在实际应用中具有广阔的潜力,有必要进行系统全面的综述以总结其最新研究进展。在本综述中,我们首先对生物模板进行分类,并讨论每种生物模板在指导Pt纳米酶生长过程中的机制和特点。然后分析影响生物模板法制备Pt纳米酶生长的因素,接着总结其生物医学应用。最后,概述了该领域面临的挑战和机遇。这篇综述文章旨在为开发在生物医学应用中具有强大功能的Pt纳米酶提供理论指导。