Pioneer Arabidopsis thaliana spans the succession gradient revealing a diverse root-associated microbiome.

IF 6.2 2区 环境科学与生态学 Q1 GENETICS & HEREDITY Environmental Microbiome Pub Date : 2023-07-19 DOI:10.1186/s40793-023-00511-y
Vera Hesen, Yvet Boele, Tanja Bakx-Schotman, Femke van Beersum, Ciska Raaijmakers, Ben Scheres, Viola Willemsen, Wim H van der Putten
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Abstract

Background: Soil microbiomes are increasingly acknowledged to affect plant functioning. Research in molecular model species Arabidopsis thaliana has given detailed insights of such plant-microbiome interactions. However, the circumstances under which natural A. thaliana plants have been studied so far might represent only a subset of A. thaliana's full ecological context and potential biotic diversity of its root-associated microbiome.

Results: We collected A. thaliana root-associated soils from a secondary succession gradient covering 40 years of land abandonment. All field sites were situated on the same parent soil material and in the same climatic region. By sequencing the bacterial and fungal communities and soil abiotic analysis we discovered differences in both the biotic and abiotic composition of the root-associated soil of A. thaliana and these differences are in accordance with the successional class of the field sites. As the studied sites all have been under (former) agricultural use, and a climatic cline is absent, we were able to reveal a more complete variety of ecological contexts A. thaliana can appear and sustain in.

Conclusions: Our findings lead to the conclusion that although A. thaliana is considered a pioneer plant species and previously almost exclusively studied in early succession and disturbed sites, plants can successfully establish in soils which have experienced years of ecological development. Thereby, A. thaliana can be exposed to a much wider variation in soil ecological context than is currently presumed. This knowledge opens up new opportunities to enhance our understanding of causal plant-microbiome interactions as A. thaliana cannot only grow in contrasting soil biotic and abiotic conditions along a latitudinal gradient, but also when those conditions vary along a secondary succession gradient. Future research could give insights in important plant factors to grow in more ecologically complex later-secondary succession soils, which is an impending direction of our current agricultural systems.

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先驱拟南芥跨越演替梯度,揭示了不同的根相关微生物组。
背景:土壤微生物群对植物功能的影响越来越被人们所认识。对分子模式物种拟南芥的研究已经提供了这种植物-微生物相互作用的详细见解。然而,到目前为止,对天然拟南芥植物的研究可能只代表了拟南芥完整生态环境和其根相关微生物群潜在生物多样性的一个子集。结果:我们收集了一个次生演替梯度覆盖40年土地撂撂区的拟南芥根系相关土壤。所有试验点均位于相同的母质土壤和相同的气候区。通过细菌和真菌群落的测序和土壤非生物分析,发现拟南芥根缘土壤的生物和非生物组成存在差异,这些差异与田间立地的演替等级有关。由于所研究的地点都是(以前的)农业用地,并且没有气候变化,我们能够揭示出一个更完整的生态环境,即拟南芥可以在其中出现和维持。结论:尽管拟南芥被认为是先驱植物,以前几乎只在早期演替和受干扰的地点研究,但植物可以在经历多年生态发展的土壤中成功建立。因此,拟南芥可以暴露在土壤生态环境比目前假定的更广泛的变化。这一知识为加强我们对植物-微生物相互作用的理解开辟了新的机会,因为拟南芥不仅在沿纬度梯度的对比土壤生物和非生物条件下生长,而且在这些条件沿次级演替梯度变化时也生长。未来的研究可以为在生态更复杂的后次生演替土壤中生长的重要植物因子提供见解,这是我们当前农业系统的一个迫在眉睫的方向。
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来源期刊
Environmental Microbiome
Environmental Microbiome Immunology and Microbiology-Microbiology
CiteScore
7.40
自引率
2.50%
发文量
55
审稿时长
13 weeks
期刊介绍: Microorganisms, omnipresent across Earth's diverse environments, play a crucial role in adapting to external changes, influencing Earth's systems and cycles, and contributing significantly to agricultural practices. Through applied microbiology, they offer solutions to various everyday needs. Environmental Microbiome recognizes the universal presence and significance of microorganisms, inviting submissions that explore the diverse facets of environmental and applied microbiological research.
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