大黄素
双功能
化学
糖基化
生物化学
突变
立体化学
催化作用
糖苷
突变体
糖基转移酶
有机化学
磷酸果糖激酶2
定向诱变
保健品
分子模型
定点突变
溶剂
糖蛋白
分子
组合化学
动力学
作者
Jianhui Chen,Hongping Ma,Fan Lin,Shenglong Chen,Shujing Cheng,Peiyong Xin,Haili Fan,JinFang CHU,Tuanyao Chai,Hong Wang
标识
DOI:10.1021/acs.jafc.5c12500
摘要
Emodin glucosides, including emodins 1-O-glucoside (E1G), E6G, and E8G, possess significant pharmaceutical and nutraceutical potentials. Here, we identified PcUGT71BE11 from Polygonum cuspidatum as a bifunctional UGT capable of both glycosylating all three hydroxyl groups of emodin and deglycosylating E1G and E8G. Kinetic and time-course analyses showed that E1G was the first product, and its accumulation was pH-dependent. PcUGT71BE11 predominantly produced E1G at pH 8.8 but shifted to E6G at pH 6.8 due to decreased glycosylation and increased deglycosylation at acidic pH. The UDP-dependent deglycosylation was attenuated by sucrose synthase introduction, thereby enhancing E1G accumulation. Structural modeling, molecular dynamics, MM/GBSA binding free energy, and mutagenesis revealed the molecular basis: H19, D120, P190, and E395 governed the bifunctionality, while C144, I192, and L147 contributed to the regioselectivity. Notably, the L147N mutant enhanced the 8-O-glycosylation selectivity. This study elucidates the molecular mechanism of PcUGT71BE11 and provides a promising catalyst for producing diverse emodin glycosides.
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