迷迭香酸
生物合成
基质(水族馆)
蛋白质工程
化学
ATP合酶
催化作用
生物化学
重组DNA
底物特异性
动力学
代谢工程
酶
氨基酸
蛋白质结构
立体化学
肽
灵活性(工程)
活动站点
生物催化
催化效率
酶分析
作者
Yue Feng,Zhoulu Wang,Junbo Li,Zhenli Ren,Yanting Wu,Hao Zhan,Xuefei Chen,Yao Wang,Min Shi,Jia Xu,Degang Zhao,Jianbo Zhang,Kunlun Li,Guoyin Kai
标识
DOI:10.1021/acs.jafc.5c08090
摘要
Rosmarinic acid (RA) has been incorporated in various nutritious and health-promoting products. Rosmarinic acid synthase (RAS) is a committed enzyme in RA biosynthesis. However, SmRASs from Salvia miltiorrhiza remains functionally uncharacterized. Herein, a group of SmRASs was identified from the S. miltiorrhiza, and recombinant SmRAS1 was demonstrated to convert caffeoyl-CoA and 3,4-dihydroxyphenyllactic acid to form RA. SmRAS1 exhibited maximum activity at 45 °C and pH 8.0 with Km values of 18 μM and 1647 μM for caffeoyl-CoA and 3,4-dihydroxyphenyllactic acid, respectively. Subsequently, three highly catalytic activity SmRAS1 mutations R367W, G293I, and G293Rwere obtained, exhibiting 1.53-2.15 fold higher catalytic efficiency than the wild-type enzyme. Structural analysis and molecular dynamics simulations revealed that enlarged substrate access tunnel and reduced flexibility of residues286-295 located above the substrate pocket enhanced its catalytic activity. These results elucidate the mechanism underlying RA biosynthesis in S. miltiorrhiza and provide a promising RAS for RA biosynthesis in microbes.
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