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亚麻醇和 ABA 的积累参与了外源 EBR 诱导的茶树抗旱性。

Accumulation of Galactinol and ABA Is Involved in Exogenous EBR-Induced Drought Tolerance in Tea Plants.

机构信息

College of Horticulture, Northwest A&F University, Yangling 712100, Shaanxi, China.

出版信息

J Agric Food Chem. 2022 Oct 19;70(41):13391-13403. doi: 10.1021/acs.jafc.2c04892. Epub 2022 Oct 11.

Abstract

Drought stress severely limits growth and causes losses in the yield of tea plants. Exogenous application of 24-epibrassinolide (EBR) positively regulates drought responses in various plants. However, whether EBR could contribute to drought resistance in tea plants and the underlying mechanisms has not been investigated. Here, we found that EBR application is beneficial for the drought tolerance of tea plants. The transcriptome results revealed that EBR could contribute to tea plant drought resistance by promoting galactinol and abscisic acid (ABA) biosynthesis gene expression. The content of galactinol was elevated by EBR and EBR-responsive CsDof1.1 positively regulated the expression of the galactinol synthase genes and to contribute to the accumulation of galactinol by directly binding to their promoters. Moreover, exogenous EBR was found to elevate the expression of genes related to ABA signal transduction and stomatal closure regulation, which resulted in the promotion of stomatal closure. In addition, EBR-responsive CsMYC2-2 is involved in ABA accumulation by binding to the promoters and to activate their expression. In summary, findings in this study provide knowledge into the transcriptional regulatory mechanism of EBR-induced drought resistance in tea plants.

摘要

干旱胁迫严重限制了茶树的生长并导致其产量损失。外源施用 24-表油菜素内酯(EBR)可正向调控多种植物的干旱响应。然而,EBR 是否能促进茶树的抗旱性以及其潜在的机制尚未被研究。在这里,我们发现 EBR 的应用有利于提高茶树的抗旱性。转录组结果表明,EBR 通过促进半乳糖醇和脱落酸(ABA)生物合成基因的表达有助于提高茶树的抗旱性。EBR 能提高半乳糖醇的含量,并且 EBR 响应的 CsDof1.1 能通过直接结合其启动子来正调控半乳糖醇合酶基因 和 的表达,从而有助于半乳糖醇的积累。此外,外源 EBR 被发现能提高与 ABA 信号转导和气孔关闭调节相关的基因的表达,从而促进气孔关闭。此外,EBR 响应的 CsMYC2-2 通过结合启动子 和 来激活它们的表达,从而参与 ABA 的积累。总之,本研究的结果为 EBR 诱导的茶树抗旱性的转录调控机制提供了知识。

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