Shandong Provincial Key Laboratory of Molecular Engineering, School of Chemistry and Chemical Engineering, Qilu University of Technology (Shandong Academy of Sciences), Jinan 250353, China.
College of Chemistry and Chemical Engineering, Qilu Normal University, Jinan 250200, China.
Biosensors (Basel). 2024 Jan 12;14(1):40. doi: 10.3390/bios14010040.
Due to the limitation that natural peroxidase enzymes can only function in relatively mild environments, nanozymes have expanded the application of enzymology in the biological field by dint of their ability to maintain catalytic oxidative activity in relatively harsh environments. At the same time, the development of new and highly efficient composite nanozymes has been a challenge due to the limitations of monometallic particles in applications and the inherently poor enzyme-mimetic activity of composite nanozymes. The inherent enzyme-mimicking activity is due to Au, Ag, and Pt, along with other transition metals. Moreover, the nanomaterials exhibit excellent enzyme-mimicking activity when composited with other materials. Therefore, this paper focuses on composite nanozymes with simulated peroxidase activity that have been prepared using noble metals such as Au, Ag, and Pt and other transition metal nanoparticles in recent years. Their simulated enzymatic activity is utilized for biomedical applications such as glucose detection, cancer cell detection and tumor treatment, and antibacterial applications.
由于天然过氧化物酶只能在相对温和的环境中发挥作用,纳米酶通过在相对恶劣的环境中保持催化氧化活性的能力,扩展了酶学在生物领域的应用。同时,由于单金属颗粒在应用中的局限性以及复合纳米酶固有的较差的酶模拟活性,开发新型、高效的复合纳米酶一直是一个挑战。这种固有的酶模拟活性归因于金、银和铂以及其他过渡金属。此外,纳米材料与其他材料复合时表现出优异的酶模拟活性。因此,本文主要关注近年来利用金、银、铂等贵金属以及其他过渡金属纳米粒子制备的具有模拟过氧化物酶活性的复合纳米酶。它们的模拟酶活性被用于生物医学应用,如葡萄糖检测、癌细胞检测和肿瘤治疗以及抗菌应用。