血红素
生物催化
超分子化学
组合化学
化学
纳米材料
人工酶
辣根过氧化物酶
催化作用
热稳定性
酶
生物信息学
纳米技术
材料科学
生物化学
有机化学
血红素
分子
反应机理
基因
作者
Dehui Qiu,Fangni He,Yuan Liu,Zhaoxi Zhou,Yuqin Yang,Zhongwen Long,Qianqian Chen,Desheng Chen,Shijiong Wei,Xuanxiang Mao,Xiaobo Zhang,Jean‐Louis Mergny,David Monchaud,Huangxian Ju,Jun Zhou
标识
DOI:10.1002/advs.202402237
摘要
Abstract Nanomaterials excel in mimicking the structure and function of natural enzymes while being far more interesting in terms of structural stability, functional versatility, recyclability, and large‐scale preparation. Herein, the story assembles hemin, histidine analogs, and G‐quadruplex DNA in a catalytically competent supramolecular assembly referred to as assembly‐activated hemin enzyme (AA‐heminzyme). The catalytic properties of AA‐heminzyme are investigated both in silico (by molecular docking and quantum chemical calculations) and in vitro (notably through a systematic comparison with its natural counterpart horseradish peroxidase, HRP). It is found that this artificial system is not only as efficient as HRP to oxidize various substrates (with a turnover number k cat of 115 s −1 ) but also more practically convenient (displaying better thermal stability, recoverability, and editability) and more economically viable, with a catalytic cost amounting to <10% of that of HRP. The strategic interest of AA‐heminzyme is further demonstrated for both industrial wastewater remediation and biomarker detection (notably glutathione, for which the cost is decreased by 98% as compared to commercial kits).
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