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土壤化学遗产会引发后来到达的植物中具有物种特异性和依赖于环境的根响应。

Soil chemical legacies trigger species-specific and context-dependent root responses in later arriving plants.

机构信息

Ecosystem Functioning and Services, Institute of Ecology, Leuphana University of Lüneburg, Lüneburg, Germany.

Molecular Interaction Ecology, German Centre for Integrative Biodiversity Research (iDiv) Halle-Jena-Leipzig, Leipzig, Germany.

出版信息

Plant Cell Environ. 2021 Apr;44(4):1215-1230. doi: 10.1111/pce.13999. Epub 2021 Feb 1.

Abstract

Soil legacies play an important role for the creation of priority effects. However, we still poorly understand to what extent the metabolome found in the soil solution of a plant community is conditioned by its species composition and whether soil chemical legacies affect subsequent species during assembly. To test these hypotheses, we collected soil solutions from forb or grass communities and evaluated how the metabolome of these soil solutions affected the growth, biomass allocation and functional traits of a forb (Dianthus deltoides) and a grass species (Festuca rubra). Results showed that the metabolomes found in the soil solutions of forb and grass communities differed in composition and chemical diversity. While soil chemical legacies did not have any effect on F. rubra, root foraging by D. deltoides decreased when plants received the soil solution from a grass or a forb community. Structural equation modelling showed that reduced soil exploration by D. deltoides arose via either a root growth-dependent pathway (forb metabolome) or a root trait-dependent pathway (grass metabolome). Reduced root foraging was not connected to a decrease in total N uptake. Our findings reveal that soil chemical legacies can create belowground priority effects by affecting root foraging in later arriving plants.

摘要

土壤遗留在优先效应的形成中起着重要作用。然而,我们仍然不太清楚植物群落土壤溶液中的代谢组在多大程度上受到其物种组成的影响,以及土壤化学遗留在组装过程中是否会影响后续物种。为了检验这些假设,我们从草本或禾本科群落中采集了土壤溶液,并评估了这些土壤溶液的代谢组如何影响一种草本植物(Dianthus deltoides)和一种禾本科植物(Festuca rubra)的生长、生物量分配和功能特征。结果表明,草本和禾本科群落土壤溶液中的代谢组在组成和化学多样性上存在差异。虽然土壤化学遗留在 F. rubra 上没有任何影响,但当植物接受来自草本或禾本科群落的土壤溶液时,D. deltoides 的根觅食减少。结构方程模型表明,D. deltoides 减少土壤探索是通过根生长依赖途径(草本代谢组)或根性状依赖途径(禾本科代谢组)发生的。减少的根觅食与总氮吸收的减少无关。我们的研究结果表明,土壤化学遗留在通过影响后续到达植物的根觅食来创造地下优先效应。

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