Fu Jie, Wang Piao-Yi, Ni Rong, Zhang Jiao-Zhen, Zhu Ting-Ting, Tan Hui, Zhang Jing, Lou Hong-Xiang, Cheng Ai-Xia
Department of Natural Product Chemistry, Key Laboratory of Chemical Biology, (Ministry of Education), School of Pharmaceutical Sciences, Shandong University, Jinan 250012, PR China.
Department of Natural Product Chemistry, Key Laboratory of Chemical Biology, (Ministry of Education), School of Pharmaceutical Sciences, Shandong University, Jinan 250012, PR China.
Plant Sci. 2023 Apr;329:111599. doi: 10.1016/j.plantsci.2023.111599. Epub 2023 Jan 20.
The enzyme flavone synthase Is (FNS Is) converts flavanones to flavones, whereas flavanone 3β-hydroxylases (F3Hs) catalyze the formation of dihydroflavonols, a precursor of flavonols and anthocyanins. Canonical F3Hs have been characterized in seed plants, which are evolutionarily related to liverwort FNS Is. However, as important evolutionary lineages between liverworts and seed plants, ferns FNS Is and F3Hs have not been identified. In the present study, we characterized a bifunctional enzyme PnFNS I/F3H from the fern Psilotum nudum. We found that PnFNS I/F3H catalyzed the conversion of naringenin to apigenin and dihydrokaempferol. In addition, it catalyzed five different flavanones to generate the corresponding flavones. Site-directed mutagenesis results indicated that the P228-Y228 mutant protein displayed the FNS I/F2H activity (catalyzing naringenin to generate apigenin and 2-hydroxynaringenin), thus having similar functions as liverwort FNS I/F2H. Moreover, the overexpression of PnFNS I/F3H in Arabidopsis tt6 and dmr6 mutants increased the content of flavones and flavonols in plants, further indicating that PnFNS I/F3H showed FNS I and F3H activities in planta. This is the first study to characterize a bifunctional enzyme FNS I/F3H in ferns. The functional transition from FNS I/F3H to FNS I/F2H will be helpful in further elucidating the relationship between angiosperm F3Hs and liverwort FNS Is.
黄酮合酶Is(FNS Is)可将黄烷酮转化为黄酮,而黄烷酮3β - 羟化酶(F3Hs)催化二氢黄酮醇的形成,二氢黄酮醇是黄酮醇和花青素的前体。典型的F3Hs已在种子植物中得到表征,种子植物在进化上与地钱FNS Is相关。然而,作为地钱和种子植物之间重要的进化谱系,蕨类植物的FNS Is和F3Hs尚未被鉴定。在本研究中,我们对来自裸蕨的双功能酶PnFNS I/F3H进行了表征。我们发现PnFNS I/F3H催化柚皮素转化为芹菜素和二氢山奈酚。此外,它还催化五种不同的黄烷酮生成相应的黄酮。定点诱变结果表明,P228 - Y228突变蛋白表现出FNS I/F2H活性(催化柚皮素生成芹菜素和2 - 羟基柚皮素),因此具有与地钱FNS I/F2H相似的功能。此外,PnFNS I/F3H在拟南芥tt6和dmr6突变体中的过表达增加了植物中黄酮和黄酮醇的含量,进一步表明PnFNS I/F3H在植物体内表现出FNS I和F3H活性。这是首次对蕨类植物中的双功能酶FNS I/F3H进行表征的研究。从FNS I/F3H到FNS I/F2H的功能转变将有助于进一步阐明被子植物F3Hs与地钱FNS Is之间的关系。