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Increased dependence on mycorrhizal fungi for nutrient acquisition under carbon limitation by tree girdling

摘要Nutrient acquisition through symbiotic ectomycorrhizal fungi is carbon(C)costly but fundamental for plant growth,community,and ecosystem functioning.Here,we examined the functions of roots and mycorrhiza with respect to nutrient uptake after artificially inducing C limitation-seven months after girdling of an ectomycorrhizal tree,Pinus taeda.Root physiological activity(measured as root nitrogen content and root exudation)declined after girdling and was accompanied with 110%and 340%increases in mycorrhizal colonization and extramatrical hyphal length,respectively.Fungi colonizing roots switched to a community characterized by higher C efficiency(lower C cost)of nutrient acquisition(CENA,the amount of nutrient acquisition per unit C cost)and lower network complexity,indicating a tradeoff between CENA and stability of the fungal community.Root transcriptome analysis suggested a shift in metabolic pathways from a tricarboxylic acid cycle decomposition of carbohydrate to lipid biosynthesis to maintain closer associations with mycorrhiza for nutrient cycling after the girdling.By integrating multi-level evidence,including root transcriptome,fungal composition,and network complexity data,we demonstrate an increased dependence on mycorrhiza for nutrient acquisition under the C limitation condition,which is likely due to a shift to fungal community with higher CENA at the cost of lower stability.

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作者单位 College of Forestry,Henan Agricultural University,Zhengzhou 450002,China [1] College of Horticulture,China Agricultural University,Beijing 100193,China [2] School of Urban Planning and Design,Peking University Shenzhen Graduate School,Peking University,Shenzhen 518055,China;State Environmental Protection Key Laboratory of Integrated Surface Water-Groundwater Pollution Control,School of Environmental Science and Engineering,Southern University of Science and Technology,Shenzhen 518055,China;Guangdong Provincial Key Laboratory of Soil and Groundwater Pollution Control,School of Environmental Science and Engineering,Southern University of Science and Technology,Shenzhen 518055,China [3] State Environmental Protection Key Laboratory of Integrated Surface Water-Groundwater Pollution Control,School of Environmental Science and Engineering,Southern University of Science and Technology,Shenzhen 518055,China;Guangdong Provincial Key Laboratory of Soil and Groundwater Pollution Control,School of Environmental Science and Engineering,Southern University of Science and Technology,Shenzhen 518055,China [4] Department of Soil Science of Temperate Ecosystem,University of G?ttingen,G?ttingen 37077,Germany;Peoples Friendship University of Russia(RUDN University),Moscow 117198,Russia [5] College of Ecology and Environment,Zhengzhou University,Zhengzhou 450001,China [6] Faculty of Science,Shinshu University,3-1-1 Asahi,Matsumoto,Nagano 390-8621,Japan [7] Hawkesbury Institute for the Environment,Western Sydney University,Penrith,New South Wales 2751,Australia;College of Life Science,Hebei University,Baoding 071002,China [8]
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DOI 10.1016/j.pld.2025.02.004
发布时间 2025-08-27(万方平台首次上网日期,不代表论文的发表时间)
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植物多样性(英文版)

植物多样性(英文版)

2025年47卷3期

466-478页

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