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水分胁迫和菌根破坏诱导叶际微生物组组成的平行变化。

Water stress and disruption of mycorrhizas induce parallel shifts in phyllosphere microbiome composition.

机构信息

Department of Integrative Biology, University of California, Berkeley, CA, 94720, USA.

Department of Environmental Science, Policy, and Management, University of California, Berkeley, CA, 94720, USA.

出版信息

New Phytol. 2022 Jun;234(6):2018-2031. doi: 10.1111/nph.17817. Epub 2021 Nov 10.

Abstract

Water and nutrient acquisition are key drivers of plant health and ecosystem function. These factors impact plant physiology directly as well as indirectly through soil- and root-associated microbial responses, but how they in turn affect aboveground plant-microbe interactions are not known. Through experimental manipulations in the field and growth chamber, we examine the interacting effects of water stress, soil fertility, and arbuscular mycorrhizal fungi on bacterial and fungal communities of the tomato (Solanum lycopersicum) phyllosphere. Both water stress and mycorrhizal disruption reduced leaf bacterial richness, homogenized bacterial community composition among plants, and reduced the relative abundance of dominant fungal taxa. We observed striking parallelism in the individual microbial taxa in the phyllosphere affected by irrigation and mycorrhizal associations. Our results show that soil conditions and belowground interactions can shape aboveground microbial communities, with important potential implications for plant health and sustainable agriculture.

摘要

水和养分的获取是植物健康和生态系统功能的关键驱动因素。这些因素直接影响植物生理学,也通过土壤和根系相关微生物的反应间接影响,但它们反过来如何影响地上植物-微生物相互作用尚不清楚。通过在野外和生长室进行的实验操作,我们研究了水分胁迫、土壤肥力和丛枝菌根真菌对番茄(Solanum lycopersicum)叶际细菌和真菌群落的相互作用影响。水分胁迫和菌根破坏都减少了叶细菌的丰富度,使植物间的细菌群落组成同质化,并降低了优势真菌类群的相对丰度。我们观察到受灌溉和菌根关联影响的叶际微生物分类群个体之间存在惊人的平行性。我们的研究结果表明,土壤条件和地下相互作用可以塑造地上微生物群落,这对植物健康和可持续农业具有重要的潜在意义。

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