多铜氧化酶
突变体
化学
蛋氨酸
漆酶
氧化还原酶
野生型
构象变化
氧化酶试验
酶
螺旋(腹足类)
生物物理学
生物化学
立体化学
生物
氨基酸
基因
蜗牛
生态学
作者
Hanqian Wang,Xiaoqing Liu,Jintong Zhao,Q. Kimberley Yue,Yuhua Yan,Zengqiang Gao,Yuhui Dong,Zhiyong Zhang,Yunliu Fan,Jian Tian,Ningfeng Wu,Yong Gong
标识
DOI:10.1038/s41598-018-32446-7
摘要
Abstract The multicopper oxidase CueO is involved in copper homeostasis and copper (Cu) tolerance in Escherichia coli . The laccase activity of CueO G304K mutant is higher than wild-type CueO. To explain this increase in activity, we solved the crystal structure of G304K mutant at 1.49 Å. Compared with wild-type CueO, the G304K mutant showed dramatic conformational changes in methionine-rich helix and the relative regulatory loop (R-loop). We further solved the structure of Cu-soaked enzyme, and found that the addition of Cu ions induced further conformational changes in the R-loop and methionine-rich helix as a result of the new Cu-binding sites on the enzyme’s surface. We propose a mechanism for the enhanced laccase activity of the G304K mutant, where movements of the R-loop combined with the changes of the methionine-rich region uncover the T1 Cu site allowing greater access of the substrate. Two of the G304K double mutants showed the enhanced or decreased laccase activity, providing further evidence for the interaction between the R-loop and the methionine-rich region. The cuprous oxidase activity of these mutants was about 20% that of wild-type CueO. These structural features of the G304K mutant provide clues for designing specific substrate-binding mutants in the biotechnological applications.
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