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胡杨和三角叶杨对共生真菌 Laccaria bicolor 定殖的代谢组学反应不同。

Populus trichocarpa and Populus deltoides exhibit different metabolomic responses to colonization by the symbiotic fungus Laccaria bicolor.

出版信息

Mol Plant Microbe Interact. 2014 Jun;27(6):546-56. doi: 10.1094/MPMI-09-13-0286-R.

Abstract

Within boreal and temperate forest ecosystems, the majority of trees and shrubs form beneficial relationships with mutualistic ectomycorrhizal (ECM) fungi that support plant health through increased access to nutrients as well as aiding in stress and pest tolerance. The intimate interaction between fungal hyphae and plant roots results in a new symbiotic "organ" called the ECM root tip. Little is understood concerning the metabolic reprogramming that favors the formation of this hybrid tissue in compatible interactions and what prevents the formation of ECM root tips in incompatible interactions. We show here that the metabolic changes during favorable colonization between the ECM fungus Laccaria bicolor and its compatible host, Populus trichocarpa, are characterized by shifts in aromatic acid, organic acid, and fatty acid metabolism. We demonstrate that this extensive metabolic reprogramming is repressed in incompatible interactions and that more defensive compounds are produced or retained. We also demonstrate that L. bicolor can metabolize a number of secreted defensive compounds and that the degradation of some of these compounds produces immune response metabolites (e.g., salicylic acid from salicin). Therefore, our results suggest that the metabolic responsiveness of plant roots to L. bicolor is a determinant factor in fungus-host interactions.

摘要

在北方和温带森林生态系统中,大多数树木和灌木与互惠共生的外生菌根(ECM)真菌形成有益关系,这些真菌通过增加对养分的获取以及帮助植物应对压力和害虫耐受来支持植物健康。真菌菌丝和植物根系之间的亲密相互作用导致了一种新的共生“器官”,称为 ECM 根尖。对于有利于在相容相互作用中形成这种混合组织的代谢重编程以及防止在不相容相互作用中形成 ECM 根尖的原因,人们知之甚少。我们在这里表明,ECM 真菌双色蜡蘑(Laccaria bicolor)与其相容宿主白杨(Populus trichocarpa)之间有利定植过程中的代谢变化的特征是芳香酸、有机酸和脂肪酸代谢的转变。我们证明,这种广泛的代谢重编程在不相容相互作用中受到抑制,并且产生或保留了更多的防御化合物。我们还证明,双色蜡蘑可以代谢许多分泌的防御化合物,并且其中一些化合物的降解会产生免疫反应代谢物(例如,从水杨苷中产生水杨酸)。因此,我们的结果表明,植物根系对双色蜡蘑的代谢响应是真菌-宿主相互作用的决定因素。

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