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少数低丰度细菌在根际定殖过程中主导植物物种特异性反应。

A Small Number of Low-abundance Bacteria Dominate Plant Species-specific Responses during Rhizosphere Colonization.

作者信息

Dawson Wayne, Hör Jens, Egert Markus, van Kleunen Mark, Pester Michael

机构信息

Department of Biosciences, Durham UniversityDurham, United Kingdom.

Department of Biology, University of KonstanzKonstanz, Germany.

出版信息

Front Microbiol. 2017 May 29;8:975. doi: 10.3389/fmicb.2017.00975. eCollection 2017.

Abstract

Plant growth can be affected by soil bacteria. In turn, plants are known to influence soil bacteria through rhizodeposits and changes in abiotic conditions. We aimed to quantify the phylotype richness and relative abundance of rhizosphere bacteria that are actually influenced in a plant species-specific manner and to determine the role of the disproportionately large diversity of low-abundance bacteria belonging to the rare biosphere (<0.1 relative abundance) in this process. In addition, we aimed to determine whether plant phylogeny has an influence on the plant species-specific rhizosphere bacterial community. For this purpose, 19 herbaceous plant species from five different plant orders were grown in a common soil substrate. Bacterial communities in the initial soil substrate and the established rhizosphere soils were compared by 16S rRNA gene amplicon sequencing. Only a small number of bacterial operational taxonomic units (OTUs, 97% sequence identity) responded either positively (ca. 1%) or negatively (ca. 1%) to a specific plant species. On average, 91% of plant-specific positive response OTUs comprised bacteria belonging to the rare biosphere, highlighting that low-abundance populations are metabolically active in the rhizosphere. In addition, low-abundance OTUs were in terms of their summed relative abundance major drivers of the bacterial phyla composition across the rhizosphere of all tested plant species. However, no effect of plant phylogeny could be observed on the established rhizosphere bacterial communities, neither when considering differences in the overall established rhizosphere communities nor when considering plant species-specific responders only. Our study provides a quantitative assessment of the effect of plants on their rhizosphere bacteria across multiple plant orders. Plant species-specific effects on soil bacterial communities involved only 18-111 bacterial OTUs out of several 1000s; this minority may potentially impact plant growth in plant-bacteria interactions.

摘要

植物生长会受到土壤细菌的影响。反过来,已知植物会通过根际分泌物和非生物条件的变化影响土壤细菌。我们旨在量化以植物物种特异性方式实际受到影响的根际细菌的系统发育型丰富度和相对丰度,并确定属于稀有生物圈(相对丰度<0.1)的低丰度细菌的超大多样性在此过程中的作用。此外,我们旨在确定植物系统发育是否对植物物种特异性根际细菌群落有影响。为此,将来自五个不同植物目级的19种草本植物种植在共同的土壤基质中。通过16S rRNA基因扩增子测序比较初始土壤基质和已形成的根际土壤中的细菌群落。只有少数细菌操作分类单元(OTU,97%序列同一性)对特定植物物种有正向(约1%)或负向(约1%)响应。平均而言,91%的植物特异性阳性响应OTU包含属于稀有生物圈的细菌,这突出表明低丰度种群在根际具有代谢活性。此外,就其总相对丰度而言,低丰度OTU是所有测试植物物种根际细菌门组成的主要驱动因素。然而,无论是考虑已形成的根际群落的总体差异,还是仅考虑植物物种特异性响应者,都未观察到植物系统发育对已形成的根际细菌群落有影响。我们的研究对多种植物目级植物对其根际细菌的影响进行了定量评估。植物物种对土壤细菌群落的特异性影响仅涉及数千个细菌OTU中的18 - 111个;这一少数群体可能在植物 - 细菌相互作用中潜在地影响植物生长。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ab84/5447024/3f0138f35c33/fmicb-08-00975-g001.jpg

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