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在小麦品种XN979遭受蚜虫侵害期间茉莉酸积累的多功能性在改变抑制植物防御的植物生理特性方面的作用

Multifunctionality of Jasmonic Acid Accumulation during Aphid Infestation in Altering the Plant Physiological Traits That Suppress the Plant Defenses in Wheat Cultivar XN979.

作者信息

Yan Xia, Xu Shicai, Guo Jiao, Hu Jiazhen, He Dejia, Jia Li, Shang Huanzhang, Li Guangwei, Luo Kun

机构信息

Shaanxi Key Laboratory of Chinese Jujube, College of Life Science, Yan'an University, Yan'an 716000, China.

出版信息

Insects. 2023 Jul 11;14(7):622. doi: 10.3390/insects14070622.

Abstract

Crop plants have coevolved phytohormone-mediated defenses to combat and/or repel their colonizers. The present study determined the effects of jasmonic acid (JA) accumulation during aphid infestation on the preference and performance of Takahashi (Hemiptera: Aphididae), and its potential role in fine-tuning hormone-dependent responses in XN979 wheat cultivar seedlings was evaluated via the transcriptional profiles of marker genes related to JA- and salicylic acid (SA)-dependent responses. The preference experiment and the life table data reveal that direct foliage spraying of 2.5 mM methyl jasmonate (MeJA) exhibited weak negative or positive effects on the preferential selection and the population dynamics and oviposition parameters of . The transcription level of phytohormone biosynthesis genes shows that foliage spraying of MeJA significantly upregulated the marker genes in the JA biosynthesis pathway while downregulating the SA pathway. In addition, either MeJA treatment or previous aphid infestation significantly induced upregulated transcription of the genes involved in the JA- and SA-dependent defense responses, and the transcription level of the tryptophan decarboxylase () gene, which facilitates the conversion of L-tryptophan to tryptamine, was rapidly upregulated after the treatments as well. The main products of tryptamine conversion could play a crucial role in suppressing SA-dependent defense responses. These results will provide more experimental evidence to enable understanding of the antagonistic interaction between hormone signaling processes in cereals under aphid infestation.

摘要

农作物已经共同进化出植物激素介导的防御机制来对抗和/或抵御其定植者。本研究确定了蚜虫侵染期间茉莉酸(JA)积累对高桥蚜(半翅目:蚜科)偏好和生长的影响,并通过与JA和水杨酸(SA)依赖性反应相关的标记基因的转录谱,评估了其在调控XN979小麦品种幼苗激素依赖性反应中的潜在作用。偏好实验和生命表数据表明,直接对叶片喷洒2.5 mM茉莉酸甲酯(MeJA)对高桥蚜的偏好选择、种群动态和产卵参数表现出微弱的负面或正面影响。植物激素生物合成基因的转录水平表明,叶片喷洒MeJA显著上调了JA生物合成途径中的标记基因,同时下调了SA途径。此外,MeJA处理或先前的蚜虫侵染均显著诱导了参与JA和SA依赖性防御反应的基因的转录上调,并且在处理后,促进L-色氨酸转化为色胺的色氨酸脱羧酶()基因的转录水平也迅速上调。色胺转化的主要产物可能在抑制SA依赖性防御反应中起关键作用。这些结果将提供更多实验证据,以帮助理解蚜虫侵染下谷物中激素信号传导过程之间的拮抗相互作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/401e/10380978/0301827b0ecd/insects-14-00622-g001.jpg

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