化学
机制(生物学)
立体化学
生物合成
苯酚
序列(生物学)
脱质子化
还原酶
生物化学
劈理(地质)
催化作用
催化循环
突变
甘草
呋喃
生物催化
反应机理
酶
作者
Hongye Li,Jianlin Zou,Meng Zhang,Chunxue Zhao,Yang-oujie Bao,Yanfang Yang,M Ye
标识
DOI:10.1016/j.apsb.2026.01.005
摘要
Pterocarpans and isoflavans are important phytoalexins, and demonstrate significant benefits to human health. Pterocarpan reductases (PTRs) catalyze the conversion of pterocarpans to isoflavans, while the catalytic mechanism remains unknown. Herein, we report six PTRs (GuPTR1–6) from Glycyrrhiza uralensis , together with the first PTR crystal structure (GuPTR1/(‒)-medicarpin/NADP + , 1.8 Å). Structural analysis and mutagenesis reveal that a lysine-mediated deprotonation of the 7-OH group triggers C‒O bond cleavage of pterocarpans in the furan ring-opening reactions. This mechanism also applies to similar ring-opening enzymatic reactions. Through ancestral sequence reconstruction, we obtained a multifunctional reductase N0, which could accept different types of 4-(furan-2-yl) phenol derivatives as substrates. This study not only unveils the catalytic mechanisms of PTRs, but also provides a powerful enzymatic tool for the synthesis of bioactive isoflavans. This study reports the first crystal structure of pterocarpan reductase (GuPTR1/(‒)-medicarpin/NADP+) and its catalytic mechanism. Ancestral sequence reconstruction yields a multifunctional reductase N0 for ring-opening reactions of 4-(furan-2-yl) phenol derivatives.
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