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外生菌根真菌双色蜡蘑S238N与三种有益、中性和拮抗土壤细菌之间相互作用的成对转录组分析。

Pairwise transcriptomic analysis of the interactions between the ectomycorrhizal fungus Laccaria bicolor S238N and three beneficial, neutral and antagonistic soil bacteria.

作者信息

Deveau Aurélie, Barret Matthieu, Diedhiou Abdala G, Leveau Johan, de Boer Wietse, Martin Francis, Sarniguet Alain, Frey-Klett Pascale

机构信息

Interactions Arbres - Microorganismes, INRA UMR1136, 54280, Champenoux, France,

出版信息

Microb Ecol. 2015 Jan;69(1):146-59. doi: 10.1007/s00248-014-0445-y. Epub 2014 Aug 2.

DOI:10.1007/s00248-014-0445-y
PMID:25085516
Abstract

Ectomycorrhizal fungi are surrounded by bacterial communities with which they interact physically and metabolically during their life cycle. These bacteria can have positive or negative effects on the formation and the functioning of ectomycorrhizae. However, relatively little is known about the mechanisms by which ectomycorrhizal fungi and associated bacteria interact. To understand how ectomycorrhizal fungi perceive their biotic environment and the mechanisms supporting interactions between ectomycorrhizal fungi and soil bacteria, we analysed the pairwise transcriptomic responses of the ectomycorrhizal fungus Laccaria bicolor (Basidiomycota: Agaricales) when confronted with beneficial, neutral or detrimental soil bacteria. Comparative analyses of the three transcriptomes indicated that the fungus reacted differently to each bacterial strain. Similarly, each bacterial strain produced a specific and distinct response to the presence of the fungus. Despite these differences in responses observed at the gene level, we found common classes of genes linked to cell-cell interaction, stress response and metabolic processes to be involved in the interaction of the four microorganisms.

摘要

外生菌根真菌被细菌群落所包围,在其生命周期中,它们与这些细菌在物理和代谢方面相互作用。这些细菌对外生菌根的形成和功能可能产生积极或消极的影响。然而,关于外生菌根真菌与相关细菌相互作用的机制,我们了解得相对较少。为了了解外生菌根真菌如何感知其生物环境以及支持外生菌根真菌与土壤细菌之间相互作用的机制,我们分析了外生菌根真菌双色蜡蘑(担子菌门:伞菌目)在面对有益、中性或有害土壤细菌时的成对转录组反应。对这三个转录组的比较分析表明,真菌对每种细菌菌株的反应不同。同样,每种细菌菌株对真菌的存在也产生了特定且独特的反应。尽管在基因水平上观察到这些反应存在差异,但我们发现与细胞间相互作用、应激反应和代谢过程相关的常见基因类别参与了这四种微生物的相互作用。

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