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植物光合产物通过外生菌根菌丝快速转移至土壤细菌及其与氮素有效性的相互作用

Rapid Transfer of Plant Photosynthates to Soil Bacteria via Ectomycorrhizal Hyphae and Its Interaction With Nitrogen Availability.

作者信息

Gorka Stefan, Dietrich Marlies, Mayerhofer Werner, Gabriel Raphael, Wiesenbauer Julia, Martin Victoria, Zheng Qing, Imai Bruna, Prommer Judith, Weidinger Marieluise, Schweiger Peter, Eichorst Stephanie A, Wagner Michael, Richter Andreas, Schintlmeister Arno, Woebken Dagmar, Kaiser Christina

机构信息

Department of Microbiology and Ecosystem Science, Research Network "Chemistry meets Microbiology", University of Vienna, Vienna, Austria.

Core Facility Cell Imaging and Ultrastructure Research, University of Vienna, Vienna, Austria.

出版信息

Front Microbiol. 2019 Feb 26;10:168. doi: 10.3389/fmicb.2019.00168. eCollection 2019.

Abstract

Plant roots release recent photosynthates into the rhizosphere, accelerating decomposition of organic matter by saprotrophic soil microbes ("rhizosphere priming effect") which consequently increases nutrient availability for plants. However, about 90% of all higher plant species are mycorrhizal, transferring a significant fraction of their photosynthates directly to their fungal partners. Whether mycorrhizal fungi pass on plant-derived carbon (C) to bacteria in root-distant soil areas, i.e., incite a "hyphosphere priming effect," is not known. Experimental evidence for C transfer from mycorrhizal hyphae to soil bacteria is limited, especially for ectomycorrhizal systems. As ectomycorrhizal fungi possess enzymatic capabilities to degrade organic matter themselves, it remains unclear whether they cooperate with soil bacteria by providing photosynthates, or compete for available nutrients. To investigate a possible C transfer from ectomycorrhizal hyphae to soil bacteria, and its response to changing nutrient availability, we planted young beech trees () into "split-root" boxes, dividing their root systems into two disconnected soil compartments. Each of these compartments was separated from a litter compartment by a mesh penetrable for fungal hyphae, but not for roots. Plants were exposed to a C-CO-labeled atmosphere, while N-labeled ammonium and amino acids were added to one side of the split-root system. We found a rapid transfer of recent photosynthates via ectomycorrhizal hyphae to bacteria in root-distant soil areas. Fungal and bacterial phospholipid fatty acid (PLFA) biomarkers were significantly enriched in hyphae-exclusive compartments 24 h after C-CO-labeling. Isotope imaging with nanometer-scale secondary ion mass spectrometry (NanoSIMS) allowed for the first time visualization of plant-derived C and N taken up by an extraradical fungal hypha, and in microbial cells thriving on hyphal surfaces. When N was added to the litter compartments, bacterial biomass, and the amount of incorporated C strongly declined. Interestingly, this effect was also observed in adjacent soil compartments where added N was only available for bacteria through hyphal transport, indicating that ectomycorrhizal fungi were acting on soil bacteria. Together, our results demonstrate that (i) ectomycorrhizal hyphae rapidly transfer plant-derived C to bacterial communities in root-distant areas, and (ii) this transfer promptly responds to changing soil nutrient conditions.

摘要

植物根系将近期的光合产物释放到根际,加速腐生土壤微生物对有机物的分解(“根际激发效应”),从而增加植物可利用的养分。然而,所有高等植物物种中约90%是菌根植物,它们会将很大一部分光合产物直接转移给其真菌伙伴。菌根真菌是否会将植物来源的碳(C)传递到根系较远土壤区域的细菌中,即引发“菌丝际激发效应”,目前尚不清楚。从菌根菌丝向土壤细菌进行碳转移的实验证据有限,尤其是对于外生菌根系统。由于外生菌根真菌自身具有降解有机物的酶能力,目前尚不清楚它们是通过提供光合产物与土壤细菌合作,还是争夺可用养分。为了研究从外生菌根菌丝到土壤细菌的可能碳转移及其对养分有效性变化的反应,我们将年轻的山毛榉树()种植到“分根”箱中,将其根系分成两个不相连的土壤隔室。每个隔室通过一个对真菌菌丝可穿透但对根系不可穿透的网与一个凋落物隔室隔开。植物暴露在含有碳 - 一氧化碳标记的大气中,同时将氮标记的铵和氨基酸添加到分根系统的一侧。我们发现近期的光合产物通过外生菌根菌丝迅速转移到根系较远土壤区域的细菌中。在碳 - 一氧化碳标记24小时后,真菌和细菌的磷脂脂肪酸(PLFA)生物标志物在仅菌丝可进入的隔室中显著富集。利用纳米二次离子质谱(NanoSIMS)进行的同位素成像首次实现了对由根外真菌菌丝吸收的植物来源的碳和氮,以及在菌丝表面生长的微生物细胞的可视化。当向凋落物隔室添加氮时,细菌生物量以及碳的掺入量大幅下降。有趣的是,在相邻土壤隔室中也观察到了这种效应,在那里添加的氮只能通过菌丝运输供细菌利用,这表明外生菌根真菌对土壤细菌产生了作用。总之,我们的结果表明:(i)外生菌根菌丝迅速将植物来源的碳转移到根系较远区域的细菌群落中;(ii)这种转移对土壤养分条件的变化迅速做出反应。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f836/6399413/0e02e2d812f9/fmicb-10-00168-g0001.jpg

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