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互联的根际:高网络复杂性主导根际组合。

The interconnected rhizosphere: High network complexity dominates rhizosphere assemblages.

机构信息

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

Department of Botany and Microbiology, Institute for Environmental Genomics, University of Oklahoma, Norman, OK, 73019, USA.

出版信息

Ecol Lett. 2016 Aug;19(8):926-36. doi: 10.1111/ele.12630. Epub 2016 Jun 6.

Abstract

While interactions between roots and microorganisms have been intensively studied, we know little about interactions among root-associated microbes. We used random matrix theory-based network analysis of 16S rRNA genes to identify bacterial networks associated with wild oat (Avena fatua) over two seasons in greenhouse microcosms. Rhizosphere networks were substantially more complex than those in surrounding soils, indicating the rhizosphere has a greater potential for interactions and niche-sharing. Network complexity increased as plants grew, even as diversity decreased, highlighting that community organisation is not captured by univariate diversity. Covariations were predominantly positive (> 80%), suggesting that extensive mutualistic interactions may occur among rhizosphere bacteria; we identified quorum-based signalling as one potential strategy. Putative keystone taxa often had low relative abundances, suggesting low-abundance taxa may significantly contribute to rhizosphere function. Network complexity, a previously undescribed property of the rhizosphere microbiome, appears to be a defining characteristic of this habitat.

摘要

虽然根系与微生物之间的相互作用已经得到了深入研究,但我们对根系相关微生物之间的相互作用知之甚少。我们使用基于随机矩阵理论的 16S rRNA 基因网络分析,在温室微宇宙中两个季节里识别与野生燕麦(Avena fatua)相关的细菌网络。根际网络比周围土壤中的网络复杂得多,这表明根际具有更大的相互作用和生态位共享潜力。随着植物的生长,网络的复杂性增加,尽管多样性下降,这突出表明群落组织不能仅用单变量多样性来捕捉。共变主要是正相关(>80%),这表明根际细菌之间可能发生广泛的互利相互作用;我们确定了群体感应信号作为一种潜在的策略。假定的关键类群通常相对丰度较低,这表明低丰度类群可能对根际功能有重要贡献。网络复杂性是根际微生物组以前未描述的特性,似乎是这种栖息地的一个决定性特征。

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