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Smooth brome invasion increases rare soil bacterial species prevalence, bacterial species richness and evenness

机译:溴的顺利入侵增加了稀有土壤细菌的流行率,细菌的丰富度和均匀度

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摘要

Plant and soil communities are tightly linked, but the mechanisms by which the invasion of an exotic plant and the resulting shifts in plant diversity and productivity influence soil bacterial community structure remain poorly understood. We investigated the effects of invasive smooth brome (Bromus inermis) on grassland soil bacterial community structure using massively parallel sequencing of the 16S rRNA gene to determine bacterial community richness, evenness, composition and beta diversity (UniFrac indices) of soils collected along a gradient of smooth brome abundance. We evaluated several hypotheses including: (a) that the declines in native plant diversity associated with smooth brome invasion would cause declines in bacterial community diversity and (b) that mechanisms driving smooth brome effects on bacterial community structure involved altered soil edaphic properties rather than preferential invasion in areas of high soil nitrogen and distinct soil microbial communities. Smooth brome invasion led to increased soil nitrogen, soil carbon and root biomass. Bacterial evenness and bacterial richness increased with increasing smooth brome cover, while bacterial beta diversity declined. We found no evidence of a dominant direct link between the alteration of soil edaphic properties by brome and the changes in the soil bacterial community. Rather, the main controls on the soil bacterial community were direct effects of pH and smooth brome that could not be linked to the edaphic changes. The most important effect of brome on the bacterial community was the selective suppression of dominant bacterial species, which allowed rarer bacteria to increase in relative abundance.Synthesis. Here, we show that plant community composition influences bacterial community structure at a very fine scale, but that these changes are not due to altered soil total nitrogen or carbon content. The dominant direct effect of smooth brome invasion on soil communities suggests non-edaphic, that is inter- and intratrophic, interactions among smooth brome and non-bacterial components of the soil ecosystem are key drivers of soil community structure.
机译:植物和土壤群落紧密相连,但是对外来植物入侵以及由此导致的植物多样性和生产力变化影响土壤细菌群落结构的机制仍然知之甚少。我们使用16S rRNA基因的大规模平行测序方法,研究了入侵的平滑溴(无花果(Bromus inermis))对草原土壤细菌群落结构的影响,以确定沿梯度收集的土壤的细菌群落丰富度,均匀度,组成和β多样性(UniFrac指数)。光滑的溴丰度。我们评估了几种假设,包括:(a)与平滑溴代入侵相关的天然植物多样性的下降将导致细菌群落多样性的下降,以及(b)驱动平滑溴代对细菌群落结构的作用机制涉及改变土壤的土壤特性而不是优先在土壤氮含量高和土壤微生物群落独特的地区入侵。溴的顺利入侵导致土壤氮,土壤碳和根生物量的增加。细菌的均匀度和细菌丰富度随光滑菌落覆盖率的增加而增加,而细菌β多样性则下降。我们发现没有证据表明,溴对土壤可养性的改变与土壤细菌群落的改变之间有直接的直接联系。相反,对土壤细菌群落的主要控制是pH和平滑溴的直接影响,而这与土壤的水质变化无关。溴对细菌群落的最重要影响是对优势菌种的选择性抑制,这使稀有细菌的相对丰度增加。在这里,我们表明植物群落组成在非常细的规模上影响细菌群落结构,但是这些变化并不是由于土壤中总氮或碳含量的改变。光滑溴元素入侵对土壤群落的主要直接影响表明非营养性,即营养层间和营养层内,光滑溴元素与土壤生态系统的非细菌成分之间的相互作用是土壤群落结构的主要驱动力。

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