Selenium Application Enhances the Accumulation of Flavones and Anthocyanins in Bread Wheat (Triticum aestivum L.) Grains

黄酮类 生物强化 特里金 类黄酮 食品科学 化学 花青素 转录组 代谢物 植物 生物化学 生物 基因 微量营养素 基因表达 有机化学 抗氧化剂
作者
Fengjie Zhang,Xueyin Li,Qiangqiang Wu,Ping Lu,Qingfang Kang,Mengyao Zhao,Aiping Wang,Qi Dong,Min Sun,Zhenping Yang,Zhiqiang Gao
出处
期刊:Journal of Agricultural and Food Chemistry [American Chemical Society]
卷期号:70 (41): 13431-13444 被引量:14
标识
DOI:10.1021/acs.jafc.2c04868
摘要

Selenium (Se) biofortification in wheat reduces the risk of Se deficiency in humans. Se biofortification increases the concentration of Se and anthocyanins in wheat grains. However, it is unknown whether Se biofortification can enhance flavonoids other than anthocyanins and the mechanism underlying flavonoid accumulation in wheat grains. Here, foliar application of selenite solution in wheat was conducted 10 days after flowering. Metabolite profiling and transcriptome sequencing were performed in Se-treated grains. A significant increase in the total contents of Se, anthocyanins, and flavonoids was observed in Se-treated mature grains. Twenty-seven significantly increased flavonoids were identified in Se-treated immature grains. The significant accumulation of flavones (tricin, tricin derivatives, and chrysoeriol derivatives) was detected, and six anthocyanins, dihydroquercetin (the precursor for anthocyanin biosynthesis) and catechins were also increased. Integrated analysis of metabolites and transcriptome revealed that Se application enhanced the biosynthesis of flavones, dihydroquercetin, anthocyanins, and catechins by increasing the expression levels of seven key structural genes in flavonoid biosynthesis (two TaF3Hs, two TaDFRs, one TaF3'5'H, one TaOMT, and one TaANR). Our findings shed new light on the molecular mechanism underlying the enhancement in flavonoid accumulation by Se supplementation and pave the way for further enhancing the nutritional value of wheat grains.
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