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Phytophthora capsici-tomato interaction features dramatic shifts in gene expression associated with a hemi-biotrophic lifestyle

机译:辣椒疫霉菌-番茄的相互作用具有与半生物营养型生活方式相关的基因表达的显着变化

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Background: Plant-microbe interactions feature complex signal interplay between pathogens and their hosts. Phytophthora species comprise a destructive group of fungus-like plant pathogens, collectively affecting a wide range of plants important to agriculture and natural ecosystems. Despite the availability of genome sequences of both hosts and microbes, little is known about the signal interplay between them during infection. In particular, accurate descriptions of coordinate relationships between host and microbe transcriptional programs are lacking. Results: Here, we explore the molecular interaction between the hemi-biotrophic broad host range pathogen Phytophthora capsici and tomato. Infection assays and use of a composite microarray allowed us to unveil distinct changes in both P. capsici and tomato transcriptomes, associated with biotrophy and the subsequent switch to necrotrophy. These included two distinct transcriptional changes associated with early infection and the biotrophy to necrotrophy transition that may contribute to infection and completion of the P. capsici lifecycle Conclusions: Our results suggest dynamic but highly regulated transcriptional programming in both host and pathogen that underpin P. capsici disease and hemi-biotrophy. Dynamic expression changes of both effector- coding genes and host factors involved in immunity, suggests modulation of host immune signaling by both host and pathogen. With new unprecedented detail on transcriptional reprogramming, we can now explore the coordinate relationships that drive host-microbe interactions and the basic processes that underpin pathogen lifestyles. Deliberate alteration of lifestyle-associated transcriptional changes may allow prevention or perhaps disruption of hemi-biotrophic disease cycles and limit damage caused by epidemics.
机译:背景:植物与微生物的相互作用以病原体与其宿主之间复杂的信号相互作用为特征。疫霉属物种包括一组破坏性真菌类植物病原体,共同影响对农业和自然生态系统重要的多种植物。尽管宿主和微生物的基因组序列均可用,但在感染过程中它们之间的信号相互作用知之甚少。特别地,缺乏对宿主和微生物转录程序之间的坐标关系的准确描述。结果:在这里,我们探索了半生物营养型宿主范围广泛的病原疫霉和番茄之间的分子相互作用。感染检测和复合微阵列的使用使我们能够揭示辣椒疫霉和番茄转录组的明显变化,这些变化与生物营养和随后的坏死相关。其中包括与早期感染和从生物营养到坏死性过渡相关的两个不同的转录变化,这些变化可能导致辣椒衣原体生命周期的感染和完成。结论:我们的结果表明,在宿主和病原体基础上动态但受高度调控的转录程序是辣椒原体的基础疾病和半生肌营养不良。效应子编码基因和参与免疫的宿主因子的动态表达变化表明,宿主和病原体对宿主免疫信号的调节。借助有关转录重编程的前所未有的新细节,我们现在可以探索驱动宿主-微生物相互作用的坐标关系以及支持病原体生活方式的基本过程。与生活方式有关的转录变化的故意改变可以预防或可能破坏半生物营养疾病的周期,并限制由流行病引起的破坏。

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