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火改变了植物微生物组的组装模式:整合植物和土壤微生物对干扰的响应。

Fire alters plant microbiome assembly patterns: integrating the plant and soil microbial response to disturbance.

机构信息

Biosciences Division, Oak Ridge National Laboratory, Oak Ridge, TN, 37831, USA.

Department of Ecology and Evolutionary Biology, University of Tennessee, Knoxville, TN, 37996, USA.

出版信息

New Phytol. 2021 Jun;230(6):2433-2446. doi: 10.1111/nph.17248. Epub 2021 Mar 4.

Abstract

It is increasingly evident that the plant microbiome is a strong determinant of plant health. While the ability to manipulate the microbiome in plants and ecosystems recovering from disturbance may be useful, our understanding of the plant microbiome in regenerating plant communities is currently limited. Using 16S ribosomal RNA (rRNA) gene and internal transcribed spacer (ITS) region amplicon sequencing, we characterized the leaf, stem, fine root, rhizome, and rhizosphere microbiome of < 1-yr-old aspen saplings and the associated bulk soil after a recent high-intensity prescribed fire across a burn severity gradient. Consistent with previous studies, we found that soil microbiomes are responsive to fire. We extend these findings by showing that certain plant tissue microbiomes also change in response to fire. Differences in soil microbiome compositions could be attributed to soil chemical characteristics, but, generally, plant tissue microbiomes were not related to plant tissue elemental concentrations. Using source tracking modeling, we also show that fire influences the relative dominance of microbial inoculum and the vertical inheritance of the sapling microbiome from the parent tree. Overall, our results demonstrate how fire impacts plant microbiome assembly, diversity, and composition and highlights potential for further research towards increasing plant fitness and ecosystem recovery after fire events.

摘要

越来越明显的是,植物微生物组是植物健康的重要决定因素。虽然操纵植物和从干扰中恢复的生态系统中的微生物组的能力可能是有用的,但我们对再生植物群落中植物微生物组的理解目前还很有限。本研究使用 16S 核糖体 RNA(rRNA)基因和内部转录间隔区(ITS)区域扩增子测序,在横跨火烧强度梯度的最近一次高强度规定火烧后,对<1 年生的白杨幼树的叶片、茎、细根、根茎和根际微生物组以及相关的大量土壤进行了特征描述。与先前的研究一致,我们发现土壤微生物组对火灾有反应。我们通过显示某些植物组织微生物组也响应火灾而变化来扩展这些发现。土壤微生物组组成的差异可能归因于土壤化学特性,但通常植物组织微生物组与植物组织元素浓度无关。使用源追踪模型,我们还表明,火灾影响了微生物接种体的相对优势以及幼树微生物组从母树的垂直遗传。总的来说,我们的研究结果表明火灾如何影响植物微生物组的组装、多样性和组成,并强调了在增加火灾事件后植物适应性和生态系统恢复方面进一步研究的潜力。

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