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植物内部的隐藏世界:宏转录组学揭示木质部微生物组的复杂性。

The hidden world within plants: metatranscriptomics unveils the complexity of wood microbiomes.

机构信息

Council for Agricultural Research and Economics - Research Centre for Viticulture and Enology, Via XXVIII Aprile 26, 31015 Conegliano (TV), Italy.

Institute for Sustainable Plant Protection, CNR, Strada delle Cacce 73, 10135 Torino, Italy.

出版信息

J Exp Bot. 2022 Apr 18;73(8):2682-2697. doi: 10.1093/jxb/erac032.

Abstract

The importance of plants as complex entities influenced by genomes of the associated microorganisms is now seen as a new source of variability for a more sustainable agriculture, also in the light of ongoing climate change. For this reason, we investigated through metatranscriptomics whether the taxa profile and behaviour of microbial communities associated with the wood of 20-year-old grapevine plants are influenced by the health status of the host. We report for the first time a metatranscriptome from a complex tissue in a real environment, highlighting that this approach is able to define the microbial community better than referenced transcriptomic approaches. In parallel, the use of total RNA enabled the identification of bacterial taxa in healthy samples that, once isolated from the original wood tissue, displayed potential biocontrol activities against a wood-degrading fungal taxon. Furthermore, we revealed an unprecedented high number of new viral entities (~120 new viral species among 180 identified) associated with a single and limited environment and with potential impact on the whole holobiont. Taken together, our results suggest a complex multitrophic interaction in which the viral community also plays a crucial role in raising new ecological questions for the exploitation of microbial-assisted sustainable agriculture.

摘要

植物作为受相关微生物基因组影响的复杂实体的重要性,现在被视为农业可持续发展的一个新的可变性来源,特别是在应对气候变化的背景下。出于这个原因,我们通过宏转录组学研究了与 20 年生葡萄树木材相关的微生物群落的分类群特征和行为是否受到宿主健康状况的影响。我们首次报道了来自真实环境中复杂组织的宏转录组,这表明这种方法比参考转录组方法更能准确地定义微生物群落。同时,使用总 RNA 能够鉴定健康样本中的细菌分类群,这些细菌分类群一旦从原始木材组织中分离出来,就显示出对一种木材降解真菌分类群的潜在生物防治活性。此外,我们还揭示了一种前所未有的大量新病毒实体(在 180 种已鉴定的病毒中约有 120 种新病毒),这些病毒与单一且有限的环境相关,可能对整个整体生物产生影响。总的来说,我们的研究结果表明了一种复杂的多营养层相互作用,其中病毒群落也在提出新的生态问题以利用微生物辅助可持续农业方面发挥着关键作用。

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