Naets Matthias, Van Hemelrijck Wendy, Gruyters Willem, Verboven Pieter, Nicolaï Bart, Keulemans Wannes, De Coninck Barbara, Geeraerd Annemie H
Division of MeBioS, Department of Biosystems (BIOSYST), KU Leuven, Leuven, Belgium.
Research Station for Fruit Cultivation, Department of Mycology, Sint-Truiden, Belgium.
Front Microbiol. 2022 May 12;13:797234. doi: 10.3389/fmicb.2022.797234. eCollection 2022.
Apple is typically stored under low temperature and controlled atmospheric conditions to ensure a year round supply of high quality fruit for the consumer. During storage, losses in quality and quantity occur due to spoilage by postharvest pathogens. One important postharvest pathogen of apple is . The fungus is a broad host necrotroph with a large arsenal of infection strategies able to infect over 1,400 different plant species. We studied the apple- interaction to get a better understanding of the defense response in apple. We conducted an RNAseq experiment in which the transcriptome of inoculated and non-inoculated (control and mock) apples was analyzed at 0, 1, 12, and 28 h post inoculation. Our results show extensive reprogramming of the apple's transcriptome with about 28.9% of expressed genes exhibiting significant differential regulation in the inoculated samples. We demonstrate the transcriptional activation of pathogen-triggered immunity and a reprogramming of the fruit's metabolism. We demonstrate a clear transcriptional activation of secondary metabolism and a correlation between the early transcriptional activation of the mevalonate pathway and reduced susceptibility, expressed as a reduction in resulting lesion diameters. This pathway produces the building blocks for terpenoids, a large class of compounds with diverging functions including defense. 1-MCP and hot water dip treatment are used to further evidence the key role of terpenoids in the defense and demonstrate that ethylene modulates this response.
苹果通常储存在低温和可控气氛条件下,以确保为消费者全年供应高质量水果。在储存期间,由于采后病原体的腐败,会出现质量和数量上的损失。苹果的一种重要采后病原体是……这种真菌是一种广泛寄主的坏死营养型真菌,拥有大量的感染策略,能够感染1400多种不同的植物物种。我们研究了苹果与……的相互作用,以便更好地了解苹果中的防御反应。我们进行了一项RNA测序实验,对接种和未接种(对照和模拟接种)的苹果在接种后0、1、12和28小时的转录组进行了分析。我们的结果表明,苹果转录组发生了广泛的重编程,接种样本中约28.9%的表达基因表现出显著的差异调控。我们证明了病原体触发免疫的转录激活以及果实代谢的重编程。我们证明了次生代谢的明显转录激活,以及甲羟戊酸途径的早期转录激活与易感性降低之间的相关性,易感性降低表现为病斑直径减小。该途径产生萜类化合物的前体,萜类化合物是一大类具有多种功能(包括防御功能)的化合物。1-甲基环丙烯(1-MCP)和热水浸泡处理进一步证明了萜类化合物在防御中的关键作用,并表明乙烯调节这种反应。