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A 2-component system is involved in the early stages of the Pisolithus tinctorius-Pinus greggii symbiosis

机译:2组分系统参与了Pisolithus tinctorius-Pinus greggii共生的早期阶段

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摘要

Ectomycorrhizal symbiosis results in profound morphological and physiological modifications in both plant and fungus. This in turn is the product of differential gene expression in both co-symbionts, giving rise to specialized cell types capable of performing novel functions. During the precolonization stage, chemical signals from root exudates are sensed by the ectomycorrhizal fungus, and vice versa, which are in principle responsible for the observed change in the symbionts developmental program. Little is known about the molecular mechanisms involved in the signaling and recognition between ectomycorrhizal fungi and their host plants. In the present work, we characterized a novel lactone, termed pinelactone, and identified a gene encoding for a histidine kinase in Pisolithus tictorius, the function of which is proposed to be the perception of the aforementioned metabolites. In this study, the use of closantel, a specific inhibitor of histidine kinase phosphorylation, affected the capacity for fungal colonization in the symbiosis between Pisolithus tinctorius and Pinus greggii, indicating that a 2-component system (TCS) may operate in the early events of plant-fungus interaction. Indeed, the metabolites induced the accumulation of Pisolithus tinctorius mRNA for a putative histidine kinase (termed Pthik1). Of note, Pthik1 was able to partially complement a S. cerevisiae histidine kinase mutant, demonstrating its role in the response to the presence of these metabolites. Our results indicate a role of a TCS pathway in the early stages of ectomycorrhizal symbiosis before colonization. Furthermore, a novel lactone from Pinus greggii root exudates may activate a signal transduction pathway that contributes to the establishment of the ectomycorrhizal symbiosis.
机译:外生菌根共生会导致植物和真菌发生深刻的形态和生理变化。这又是两个共生菌中差异基因表达的产物,从而产生了能够执行新功能的专门细胞类型。在前定殖阶段,根外分泌物的化学信号被外生菌根真菌检测到,反之亦然,从原理上讲,这是共生体发育程序中观察到的变化的原因。关于外生菌根真菌与其宿主植物之间的信号传导和识别的分子机制知之甚少。在目前的工作中,我们表征了一种新型的内酯,称为松内酯,并鉴定了编码皮氏石霉中组氨酸激酶的基因,该基因的功能被认为是对上述代谢物的感知。在这项研究中,组氨酸激酶磷酸化的特异抑制剂Closantel的使用影响了Pisolithus tinctorius与Pinus greggii共生的真菌定殖能力,表明2组分系统(TCS)可能在早期发生。植物-真菌相互作用。的确,这些代谢产物诱导了假定的组氨酸激酶(称为Pthik1)的Pisolithus tinctorius mRNA的积累。值得注意的是,Pthik1能够部分补充酿酒酵母的组氨酸激酶突变体,证明了其在对这些代谢物的反应中的作用。我们的结果表明,TCS途径在定植前的外生菌根共生的早期阶段中具有重要作用。此外,来自格氏松(Pinus greggii)根分泌物的新型内酯可激活信号转导途径,该信号转导有助于外生菌根共生的建立。

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