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生长素核心受体降解尾巴中的框内缺失突变赋予对除草剂 2,4-D 的抗性。

An in-frame deletion mutation in the degron tail of auxin coreceptor confers resistance to the herbicide 2,4-D in .

机构信息

Department of Agricultural Biology, Colorado State University, Fort Collins, CO 80523.

Division CropScience, Weed Control Research, Bayer AG, 65926 Frankfurt, Germany.

出版信息

Proc Natl Acad Sci U S A. 2022 Mar 1;119(9). doi: 10.1073/pnas.2105819119.

Abstract

The natural auxin indole-3-acetic acid (IAA) is a key regulator of many aspects of plant growth and development. Synthetic auxin herbicides such as 2,4-D mimic the effects of IAA by inducing strong auxinic-signaling responses in plants. To determine the mechanism of 2,4-D resistance in a (Indian hedge mustard) weed population, we performed a transcriptome analysis of 2,4-D-resistant (R) and -susceptible (S) genotypes that revealed an in-frame 27-nucleotide deletion removing nine amino acids in the degron tail (DT) of the auxin coreceptor Aux/IAA2 (). The deletion allele cosegregated with 2,4-D resistance in recombinant inbred lines. Further, this deletion was also detected in several 2,4-D-resistant field populations of this species. transgenic lines expressing the mutant allele were resistant to 2,4-D and dicamba. The IAA2-DT deletion reduced binding to TIR1 in vitro with both natural and synthetic auxins, causing reduced association and increased dissociation rates. This mechanism of synthetic auxin herbicide resistance assigns an in planta function to the DT region of this Aux/IAA coreceptor for its role in synthetic auxin binding kinetics and reveals a potential biotechnological approach to produce synthetic auxin-resistant crops using gene-editing.

摘要

天然生长素吲哚-3-乙酸(IAA)是许多植物生长和发育方面的关键调节剂。合成生长素除草剂如 2,4-D 通过在植物中诱导强烈的生长素信号响应,模拟 IAA 的作用。为了确定印度芥菜杂草种群中 2,4-D 抗性的机制,我们对 2,4-D 抗性(R)和敏感(S)基因型进行了转录组分析,结果表明在生长素核心受体 Aux/IAA2 的 degron 尾巴(DT)中存在一个 27 个核苷酸的框内缺失,导致 9 个氨基酸缺失 ()。缺失等位基因与重组自交系中的 2,4-D 抗性共分离。此外,在该物种的几个 2,4-D 抗性田间种群中也检测到了这种缺失。表达 突变等位基因的 转基因系对 2,4-D 和麦草畏具有抗性。IAA2-DT 缺失降低了与 TIR1 在体外与天然和合成生长素的结合,导致结合减少和解离速率增加。这种合成生长素除草剂抗性的机制为该 Aux/IAA 核心受体的 DT 区域赋予了在植物体内的功能,用于其在合成生长素结合动力学中的作用,并揭示了使用基因编辑生产合成生长素抗性作物的潜在生物技术方法。

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