Polish Academy of Sciences, Institute of Dendrology, Parkowa 5, Kórnik, PL-62035, Poland.
Polish Academy of Sciences, Institute of Bioorganic Chemistry, Noskowskiego 12/14, Poznań, PL-61704, Poland.
Environ Microbiol. 2020 Sep;22(9):3754-3771. doi: 10.1111/1462-2920.15146. Epub 2020 Aug 11.
Ectomycorrhizae (ECMs) are a highly context-dependent interactions that are not always beneficial for the plant host, sometimes leading to a decrease in plant growth. However, the molecular status of these plants remains unknown. We studied Populus × canescens microcuttings characterized by impaired growth in response to colonization by a Paxillus involutus strain via integrative proteomics-metabolomics analyses. The analysed strain was characterized by low compatibility and formed only mantles, not a Hartig net, in the majority of root tips. The increased abundance of photosynthetic proteins and foliar carbohydrates co-occurred with signals of intensified resource exchange via the stems of colonized plants. In the roots, intensified C metabolism resulted in the biosynthesis of secondary C compounds unavailable to the fungal partner but also C skeletons necessary to increase insufficient N uptake from the hyphae. The stress response was also detected in colonized plants but was similar to that reported previously during mutualistic ECM interactions. In colonized poplar plants, mechanisms to prevent imbalanced C/N trade-offs were activated. Root metabolism strongly depended on features of the whole plant, especially the foliar C/N budget. However, despite ECM-triggered growth impairment and the foliar nutrient status, the fungal partner was recognized to be a symbiotic partner.
外生菌根(ECM)是一种高度依赖上下文的相互作用,并不总是对植物宿主有益,有时会导致植物生长减少。然而,这些植物的分子状态仍然未知。我们研究了毛白杨×杂种 microcuttings,这些 microcuttings 在受到 Paxillus involutus 菌株的定殖时生长受到损害,通过整合蛋白质组学-代谢组学分析进行研究。分析的菌株表现出低兼容性,仅在大多数根尖形成套,而不是 Hartig 网。光合蛋白和叶片碳水化合物的丰度增加,伴随着通过定植植物的茎进行资源交换的信号。在根中,加强的 C 代谢导致次生 C 化合物的生物合成,这些化合物对真菌伙伴不可用,但也需要 C 骨架来增加从菌丝体中摄取不足的 N。在定植的植物中也检测到应激反应,但与之前在互惠共生的 ECM 相互作用中报道的反应相似。在定植的杨树植物中,激活了防止不平衡的 C/N 贸易的机制。根代谢强烈依赖于整株植物的特征,尤其是叶片的 C/N 预算。然而,尽管 ECM 引发了生长受损和叶片养分状况,但真菌伙伴仍被认为是共生伙伴。