化学
纳米团簇
配体(生物化学)
过氧化氢
尿酸
咪唑酯
催化作用
尿酸氧化酶
活动中心
无机化学
组合化学
高分子化学
激进的
降级(电信)
反应性(心理学)
光化学
立体化学
人工酶
药物化学
氧气
酶
金属
化学稳定性
密度泛函理论
氢
动力学
作者
Chen Dong,Li Zou,Lin Zhao,Hui‐Lin Mo
标识
DOI:10.1021/acs.inorgchem.6c01478
摘要
Systematic research on the ligand effects of atomically precise metal nanoclusters toward enzyme-mimicking activity remains elusive. Herein, a series of Au 25 (SR) 18 nanoclusters capped with six types of thiolate ligands (varying in aliphatic chain length, backbone type, and functional groups) were employed as model catalysts for catalase-like (CAT-like) activity. Moderately increasing the chain length of carboxyl-terminated aliphatic thiolate ligands enhanced CAT-like activity. Au 25 (MHA) 18 (MHA = 6-mercaptohexanoic acid) exhibited satisfactory structural stability and superior CAT-like activity against external environmental variations, with an elevated electron density of Au accounting for its enhanced activity. Urate oxidase (UOx) and Au 25 (MHA) 18 were coencapsulated in zeolitic imidazolate framework-8 (ZIF-8) to construct a self-cascade system. This composite degrades uric acid (UA) via UOx, while generated hydrogen peroxide (H 2 O 2 ) is converted to oxygen (O 2 ) by Au 25 (MHA) 18, replenishing O 2 for UA degradation. Due to the cascade system and the protective effect of ZIF-8, UOx-Au 25 (MHA) 18 @ZIF-8 degraded 2.6 times as much UA as free UOx and inhibited UA crystallization. Moreover, the composite exhibits rapid, acid-responsive cargo release yet remains functional under neutral and weakly alkaline conditions. The ligand-engineering approach and self-cascade design provide a foundation for the molecular-level modulation of enzymatic activity in biomedicine.
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