过氧亚硝酸盐
氧化还原
抗氧化剂
激进的
化学
Atom(片上系统)
一氧化氮
分子
活性氧
光化学
酶
无机化学
生物化学
有机化学
超氧化物
嵌入式系统
计算机科学
作者
Menglu Jiao,Xiaoyu Mu,Si Sun,H. Yang,Lufei Ouyang,Shaofang Zhang,Jiao Guo,Jian Meng,Ya Liu,Huizhen Ma,Hao Wang,Jiahui Pei,Ruoli Zhao,Tianyu Liu,Wei Long,Xiaodong Zhang,Ruiping Zhang
标识
DOI:10.1016/j.cej.2022.136793
摘要
Modulation of radiation biological process at atomic and molecular level is closely related to biocatalytic process, redox biology and multisystem inflammation. Thus, it is necessary to clarify the exact relationship between the biocatalytic process and radiation biology, and further establish the corresponding intrinsic mechanism. In this work, we employed a serial of single atom substitutional gold clusters, which show different biocatalytic activity and selectivity for radiation induced redox modulation. The single atomic Er-substituted Au clusters show the highest antioxidant activity, and clearance rate to reactive oxygen and nitrogen species (RONS), such as peroxynitrite (ONOO−), nitric oxide (NO) and hydroxyl radicals (OH). Meanwhile, single atomic Cu- or Pt-substituted Au clusters exhibit excellent catalase-like (CAT-like) activity. Moreover, the single atomic Pt-substituted Au clusters also show the best ability to oxidate H2O molecules to OH−. Biological experiments show that Er-substituted Au clusters have good radioreduction ability, which can increase the survival rate of irradiated mice from 40% to 90%. On the contrary, Au clusters substituted by Cu or Pt have the effect of promoting radioxidation, reducing the survival rate of mice to 30% and 0%. These results suggest that antioxidant capacity, RONS scavenging ability and reducibility are closely related to radioreduction, while CAT-like activity and oxidativeness promote radioxidation.
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