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一种新型拟南芥微小RNA通过抑制超根1基因,经由吲哚-3-乙醛肟途径促进生长素生物合成。

A Novel Arabidopsis microRNA promotes IAA biosynthesis via the indole-3-acetaldoxime pathway by suppressing superroot1.

作者信息

Kong Wenwen, Li Yong, Zhang Mengmeng, Jin Feng, Li Jing

机构信息

College of Life Sciences, Northeast Agricultural University, Harbin 150030, PR China.

College of Life Sciences, Northeast Agricultural University, Harbin 150030, PR China

出版信息

Plant Cell Physiol. 2015 Apr;56(4):715-26. doi: 10.1093/pcp/pcu216. Epub 2014 Dec 31.

Abstract

IAA is a plant hormone that plays important roles in regulating growth and responses to environmental changes. Indole-3-acetaldoxime (IAOx) has been proposed as an important intermediate in the biosynthesis of IAA and two other indole compounds, indole glucosinolates and camalexin. Although the IAOx-dependent IAA biosynthesis pathway has been well studied, the mechanisms of its regulation remain elusive. Here, we report the identification of a novel microRNA, miR10515, which targets superroot1 (SUR1), the gene encoding an indole glucosinolate biosynthetic enzyme. miR10515 was induced by high temperature. Overexpression of MIR10515 resulted in a high-IAA phenotype, while the loss of function of miR10515 resulted in a low-IAA phenotype; these phenotypes were more severe at high temperature. Our results further demonstrated that miR10515 promoted IAA biosynthesis via the IAOx pathway by blocking the indole glucosinolate and camalexin biosynthetic pathways. Phytochrome interacting factor4 (PIF4), a dominant regulator of plant development in response to high temperature, was not required for miR10515 expression. These results provide information on the IAOx metabolic branching point and its biological importance.

摘要

吲哚 - 3 - 乙酸(IAA)是一种植物激素,在调节植物生长以及对环境变化的响应中发挥着重要作用。吲哚 - 3 - 乙醛肟(IAOx)被认为是IAA以及另外两种吲哚类化合物(吲哚硫苷和抗菌肽)生物合成过程中的重要中间体。尽管依赖IAOx的IAA生物合成途径已得到充分研究,但其调控机制仍不清楚。在此,我们报告了一种新型微小RNA(miR10515)的鉴定,它靶向超根1(SUR1),该基因编码一种吲哚硫苷生物合成酶。miR10515受高温诱导。过表达MIR10515导致高IAA表型,而miR10515功能缺失则导致低IAA表型;在高温下这些表型更为严重。我们的结果进一步证明,miR10515通过阻断吲哚硫苷和抗菌肽生物合成途径,经由IAOx途径促进IAA生物合成。光敏色素相互作用因子4(PIF4)是植物响应高温发育的主要调节因子,miR10515的表达并不需要它。这些结果提供了关于IAOx代谢分支点及其生物学重要性的信息。

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