化学
选择性
超氧化物
催化作用
基质(水族馆)
酶
抗氧化剂
谷胱甘肽
生物化学
神经炎症
组合化学
生物物理学
过氧化物
细胞内
双加氧酶
超氧化物歧化酶
活动站点
立体化学
活性氧
小分子
结构-活动关系
过氧化氢
调制(音乐)
氧化还原酶
分子
氧化应激
信号转导
化学生物学
炎症
细胞生物学
HEK 293细胞
作者
Haile Liu,Yonghui Li,Si Sun,Qi Xin,Shuhu Liu,Xiaoyu Mu,Xun Yuan,Ke Chen,Hao Wang,Kalman Varga,Wenbo Mi,Jiang Yang,Xiao-Dong Zhang
标识
DOI:10.1038/s41467-020-20275-0
摘要
Emerging artificial enzymes with reprogrammed and augmented catalytic activity and substrate selectivity have long been pursued with sustained efforts. The majority of current candidates have rather poor catalytic activity compared with natural molecules. To tackle this limitation, we design artificial enzymes based on a structurally well-defined Au25 cluster, namely clusterzymes, which are endowed with intrinsic high catalytic activity and selectivity driven by single-atom substitutions with modulated bond lengths. Au24Cu1 and Au24Cd1 clusterzymes exhibit 137 and 160 times higher antioxidant capacities than natural trolox, respectively. Meanwhile, the clusterzymes demonstrate preferential enzyme-mimicking catalytic activities, with Au25, Au24Cu1 and Au24Cd1 displaying compelling selectivity in glutathione peroxidase-like (GPx-like), catalase-like (CAT-like) and superoxide dismutase-like (SOD-like) activities, respectively. Au24Cu1 decreases peroxide in injured brain via catalytic reactions, while Au24Cd1 preferentially uses superoxide and nitrogenous signal molecules as substrates, and significantly decreases inflammation factors, indicative of an important role in mitigating neuroinflammation.
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