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植物醇诱导的玉米植株间信号传导通过依赖ACO31的乙烯积累促进EXP-A20驱动的对亚洲玉米螟的抗性。

Phytol-induced interplant signaling in maize facilitates EXP-A20-driven resistance through ACO31-dependent ethylene accumulation against Ostrinia furnacalis.

作者信息

Batool Raufa, Umer Muhammad Jawad, Zhang Yongjun, Guo Jingfei, Wang Zhenying

机构信息

State Key Laboratory for Biology of Plant Diseases and Insect Pests, Institute of Plant Protection, Chinese Academy of Agricultural Sciences, Beijing, 100193, China.

National Key Laboratory of Cotton Bio-breeding and Integrated Utilization/Institute of Cotton Research, Chinese Academy of Agricultural Sciences (ICR, CAAS), Anyang, Henan, 455000, China.

出版信息

Plant J. 2025 Jan;121(1):e17186. doi: 10.1111/tpj.17186. Epub 2024 Dec 8.

DOI:10.1111/tpj.17186
PMID:39645615
Abstract

Plants have evolved sophisticated defense mechanisms against insect herbivores, including cell wall fortification through lignin biosynthesis. Insect attack primes systemic acquired resistance in plants, preparing them to respond more swiftly and vigorously to subsequent insect assaults. Here, we found that Beauveria bassiana-exposed maize plants can emit phytol upon infestation by Spodoptera frugiperda, inducing plant-to-plant (PTP) communication of alert signals for neighboring plants, and revealed the expansin protein EXP-A20 as a pivotal node mediating maize defense responses in neighboring plants against the destructive pest Ostrinia furnacalis via stimulation of ethylene (ET) synthesis and lignin production. Through virus-induced gene silencing, we showed that EXP-A20 is essential for maize resistance, while downregulating ET and lignin pathways. Critically, protein-protein interactions determined via luciferase complementation and yeast two-hybrid assays demonstrated that EXP-A20 binds to and likely activates the ET-forming enzyme gene ACO31 to initiate defense signaling cascades, representing a novel signaling modality for expansins. Treatment with the plant volatile phytol has known insecticidal/priming activity, but we found that its effectiveness requires EXP-A20. This finding highlights the importance of EXP-A20 upstream of hormone-cell wall crosstalk in defense activation by volatiles. Overall, our multifaceted dissection of EXP-A20 revealed key molecular intersections underlying inducible maize immunity against herbivores. Furthermore, we provide functional evidence that extensive cell growth processes directly stimulate defense programs in plants. Our work opens new avenues for enhancing durable, broad-spectrum pest resistance in maize through the use of volatile organic compounds and PTP interactions.

摘要

植物已经进化出针对昆虫食草动物的复杂防御机制,包括通过木质素生物合成强化细胞壁。昆虫攻击会引发植物的系统获得性抗性,使它们对随后的昆虫攻击做出更迅速、更强烈的反应。在这里,我们发现被球孢白僵菌处理过的玉米植株在受到草地贪夜蛾侵害时会释放叶绿醇,诱导相邻植株间的警报信号进行植株间(PTP)通讯,并揭示了扩张蛋白EXP-A20是一个关键节点,通过刺激乙烯(ET)合成和木质素生成,介导相邻植株中玉米对毁灭性害虫亚洲玉米螟的防御反应。通过病毒诱导的基因沉默,我们表明EXP-A20对玉米抗性至关重要,同时下调了ET和木质素途径。至关重要的是,通过荧光素酶互补和酵母双杂交试验确定的蛋白质-蛋白质相互作用表明,EXP-A20与ET形成酶基因ACO31结合并可能激活它,从而启动防御信号级联反应,这代表了扩张蛋白的一种新的信号传导方式。用植物挥发性叶绿醇处理具有已知的杀虫/引发活性,但我们发现其有效性需要EXP-A20。这一发现突出了EXP-A20在挥发性物质激活防御过程中激素-细胞壁相互作用上游的重要性。总体而言,我们对EXP-A20的多方面剖析揭示了诱导玉米对食草动物免疫的关键分子交叉点。此外,我们提供了功能证据,证明广泛的细胞生长过程直接刺激植物的防御程序。我们的工作为通过使用挥发性有机化合物和PTP相互作用增强玉米持久、广谱的害虫抗性开辟了新途径。

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