化学
活动站点
催化作用
金属
酶
非共价相互作用
基质(水族馆)
酶催化
过渡金属
锰
序列(生物学)
组合化学
立体化学
分子
有机化学
生物化学
地质学
氢键
海洋学
作者
Hyunuk Eom,Yuanxin Cao,Hyunsoo Kim,Sam P. de Visser,Woon Ju Song
摘要
The catalytic functions of metalloenzymes are often strongly correlated with metal elements in the active sites. However, dioxygen-activating nonheme quercetin dioxygenases (QueD) are found with various first-row transition-metal ions when metal swapping inactivates their innate catalytic activity. To unveil the molecular basis of this seemingly promiscuous yet metal-specific enzyme, we transformed manganese-dependent QueD into a nickel-dependent enzyme by sequence- and structure-based directed evolution. Although the net effect of acquired mutations was primarily to rearrange hydrophobic residues in the active site pocket, biochemical, kinetic, X-ray crystallographic, spectroscopic, and computational studies suggest that these modifications in the secondary coordination spheres can adjust the electronic structure of the enzyme-substrate complex to counteract the effects induced by the metal substitution. These results explicitly demonstrate that such noncovalent interactions encrypt metal specificity in a finely modulated manner, revealing the underestimated chemical power of the hydrophobic sequence network in enzyme catalysis.
科研通智能强力驱动
Strongly Powered by AbleSci AI