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哌可酸合成对于大麦的系统获得抗性和植株间诱导免疫是必需的。

Pipecolic acid synthesis is required for systemic acquired resistance and plant-to-plant-induced immunity in barley.

机构信息

Helmholtz Zentrum München, Institute of Biochemical Plant Pathology, Neuherberg, Germany.

Helmholtz Zentrum München, Research Unit Environmental Simulation, Neuherberg, Germany.

出版信息

J Exp Bot. 2023 May 19;74(10):3033-3046. doi: 10.1093/jxb/erad095.

Abstract

Defense responses in plants are based on complex biochemical processes. Systemic acquired resistance (SAR) helps to fight infections by (hemi-)biotrophic pathogens. One important signaling molecule in SAR is pipecolic acid (Pip), accumulation of which is dependent on the aminotransferase ALD1 in Arabidopsis. While exogenous Pip primes defense responses in the monocotyledonous cereal crop barley (Hordeum vulgare), it is currently unclear if endogenous Pip plays a role in disease resistance in monocots. Here, we generated barley ald1 mutants using CRISPR/Cas9, and assessed their capacity to mount SAR. Endogenous Pip levels were reduced after infection of the ald1 mutant, and this altered systemic defense against the fungus Blumeria graminis f. sp. hordei. Furthermore, Hvald1 plants did not emit nonanal, one of the key volatile compounds that are normally emitted by barley plants after the activation of SAR. This resulted in the inability of neighboring plants to perceive and/or respond to airborne cues and prepare for an upcoming infection, although HvALD1 was not required in the receiver plants to mediate the response. Our results highlight the crucial role of endogenous HvALD1 and Pip for SAR, and associate Pip, in particular together with nonanal, with plant-to-plant defense propagation in the monocot crop barley.

摘要

植物的防御反应基于复杂的生化过程。系统获得性抗性 (SAR) 有助于抵御(半)生物病原体的感染。SAR 中的一个重要信号分子是哌啶酸 (Pip),其积累依赖于拟南芥中的氨基转移酶 ALD1。虽然外源性 Pip 可在单子叶谷类作物大麦 (Hordeum vulgare) 中引发防御反应,但目前尚不清楚内源性 Pip 是否在单子叶植物的抗病性中发挥作用。在这里,我们使用 CRISPR/Cas9 生成了大麦 ald1 突变体,并评估了它们引发 SAR 的能力。ald1 突变体感染后内源 Pip 水平降低,这改变了对真菌 Blumeria graminis f. sp. hordei 的系统防御。此外,HvD1 植株不会发出非那醇,这是非那醇是大麦植株在 SAR 激活后通常会发出的关键挥发性化合物之一。这导致邻近植物无法感知和/或对空气传播的信号做出反应,并为即将到来的感染做好准备,尽管接收植物中不需要 HvALD1 来介导反应。我们的结果强调了内源性 HvALD1 和 Pip 对 SAR 的关键作用,并将 Pip 与非那醇特别联系起来,与单子叶作物大麦中的植物间防御传播有关。

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