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打顶处理会降低阿魏酸和类黄酮的生物合成,并诱导当归根木质化。

Bolting reduces ferulic acid and flavonoid biosynthesis and induces root lignification in Angelica sinensis.

机构信息

Key Lab of Aridland Crop Science / College of Life Science and Technology, Gansu Agricultural University, Lanzhou, 730070, China.

College of Pharmacy, Gansu University of Chinese Medicine, Lanzhou, 730000, China.

出版信息

Plant Physiol Biochem. 2022 Jan 1;170:171-179. doi: 10.1016/j.plaphy.2021.12.005. Epub 2021 Dec 5.

Abstract

Angelica sinensis is a perennial herbaceous species that produces the bioactive metabolites ferulic acid and alkylphthalides widely applied in the treatment of cardio-cerebrovascular diseases. While the effects of bolting on plant biomass and metabolites accumulation have been partly investigated, the mechanism of bolting reducing metabolites biosynthesis is still limited. In this study, the root biomass, accumulations of ferulic acid, flavonoids and lignin, antioxidant capacity, and related genes expression at four different bolting stages were investigated. The results showed that there was a 2.2-, 2.4- and 2.9-fold decrease of the root biomass, ferulic acid and flavonoids contents, while a 2.9-fold increase of lignin content on a per plant basis during the bolting stages. The antioxidant capacity also exhibited significant decrease with growth and development. The differential expression levels of the 20 genes, which are involved in biosynthesis of ferulic acid (e.g. AsPAL1, As4CLs and AsHCT), flavonoids (e.g. AsCHS, AsCHI and AsI3'H) and lignin (e.g. AsCAD1 and AsLACs), were consistent with changes in the above metabolites accumulation. The findings will provide useful references for improving the production of bioactive metabolites in A. sinensis.

摘要

当归属植物是一种多年生草本植物,它产生的活性代谢物阿魏酸和烷基苯酞广泛应用于心脑血管疾病的治疗。虽然抽薹对植物生物量和代谢物积累的影响已经部分研究过,但抽薹降低代谢物生物合成的机制仍然有限。在这项研究中,研究了四个不同抽薹阶段的根生物量、阿魏酸、类黄酮和木质素的积累、抗氧化能力以及相关基因的表达。结果表明,在抽薹阶段,单株根生物量、阿魏酸和类黄酮含量分别下降了 2.2 倍、2.4 倍和 2.9 倍,而木质素含量则增加了 2.9 倍。抗氧化能力也随着生长发育而显著下降。参与阿魏酸(如 AsPAL1、As4CLs 和 AsHCT)、类黄酮(如 AsCHS、AsCHI 和 AsI3'H)和木质素(如 AsCAD1 和 AsLACs)生物合成的 20 个基因的差异表达水平与上述代谢物积累的变化一致。这些发现将为提高当归中生物活性代谢物的产量提供有用的参考。

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