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脱落酸通过拟南芥中的转录因子 ABA 不敏感 5 促进磷酸盐的获取。

Abscisic acid facilitates phosphate acquisition through the transcription factor ABA INSENSITIVE5 in Arabidopsis.

机构信息

State Key Laboratory of Crop Stress Adaptation and Improvement, State Key Laboratory of Cotton Biology, School of Life Sciences, Henan University, Kaifeng, 475004, China.

Jiangsu Key Laboratory of Marine Pharmaceutical Compound Screening, Jiangsu Ocean University, Lianyungang, 222005, China.

出版信息

Plant J. 2022 Jul;111(1):269-281. doi: 10.1111/tpj.15791. Epub 2022 May 19.

Abstract

Low phosphate (LP) in soil is a common nutrient stress that severely restricts agricultural production, but the role, if any, of the major stress phytohormone abscisic acid (ABA) in plant phosphate (Pi) starvation responses remains elusive. Here, we report that LP-induced ABA accumulation promotes Pi uptake in an ABA INSENSITIVE5 (ABI5)-dependent manner in Arabidopsis thaliana. LP significantly activated plant ABA biosynthesis, metabolism, and stress responses, suggesting a role of ABA in the plant response to Pi availability. LP-induced ABA accumulation and expression of two major high-affinity phosphate transporter genes PHOSPHATE TRANSPORTER1;1/1;4 (PHT1;1/1;4) were severely impaired in a mutant lacking BETA-GLUCOSIDASE1 (BG1), which converts conjugated ABA to active ABA, and the mutant had shorter roots and less Pi content than wild-type plants under LP conditions. Moreover, a mutant of ABI5, which encodes a central transcription factor in ABA signaling, also exhibited suppressed root elongation and had reduced Pi content under LP conditions. ABI5 facilitated Pi acquisition by activating the expression of PHT1;1 by directly binding to its promoter, while overexpression of PHT1;1 completely rescued its Pi content under LP conditions. Together, our findings illustrate a molecular mechanism by which ABA positively modulates phosphate acquisition through ABI5 in the Arabidopsis response to phosphate deficiency.

摘要

土壤中的低磷酸盐(LP)是一种常见的营养胁迫,严重限制了农业生产,但主要胁迫植物激素脱落酸(ABA)在植物磷酸盐(Pi)饥饿反应中的作用仍不清楚。在这里,我们报告 LP 诱导的 ABA 积累以依赖于 ABA 不敏感 5(ABI5)的方式促进拟南芥中 Pi 的吸收。LP 显著激活植物 ABA 的生物合成、代谢和应激反应,表明 ABA 在植物对 Pi 可用性的反应中起作用。在缺乏 BETA-葡萄糖苷酶 1(BG1)的突变体中,LP 诱导的 ABA 积累和两个主要高亲和力磷酸盐转运体基因 PHOSPHATE TRANSPORTER1;1/1;4(PHT1;1/1;4)的表达受到严重损害,BG1 将结合态 ABA 转化为活性 ABA,突变体在 LP 条件下的根比野生型植物短,Pi 含量也较少。此外,ABI5 的突变体,它编码 ABA 信号传导中的一个中央转录因子,也表现出抑制根伸长,并且在 LP 条件下 Pi 含量减少。ABI5 通过直接结合其启动子激活 PHT1;1 的表达来促进 Pi 的获取,而过表达 PHT1;1 完全挽救了其在 LP 条件下的 Pi 含量。总之,我们的研究结果说明了 ABA 通过 ABI5 在拟南芥对缺磷反应中积极调节磷酸盐获取的分子机制。

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