蓝莓印迹的根龛增加了土壤-根际-根连续体中的菌-真菌跨界相互作用。

Root Niches of Blueberry Imprint Increasing Bacterial-Fungal Interkingdom Interactions along the Soil-Rhizosphere-Root Continuum.

机构信息

Co-Innovation Center for Sustainable Forestry in Southern China, Nanjing Forestry University, Nanjing, China.

Institute of Botany, Jiangsu Province and Chinese Academy of Sciences (Nanjing Botanical Garden Mem. Sun Yat-Sen), Jiangsu Key Laboratory for the Research and Utilization of Plant Resources, Nanjing, China.

出版信息

Microbiol Spectr. 2023 Jun 15;11(3):e0533322. doi: 10.1128/spectrum.05333-22. Epub 2023 May 24.

Abstract

Plant root-associated microbiomes play critical roles in promoting plant health, productivity, and tolerance to biotic/abiotic stresses. Blueberry (Vaccinium spp.) is adapted to acidic soils, while the interactions of the root-associated microbiomes in this specific habitat under various root microenvironments remain elusive. Here, we investigated the diversity and community composition of bacterial and fungal communities in various blueberry root niches (bulk soil, rhizosphere soil, and root endosphere). The results showed that blueberry root niches significantly affected root-associated microbiome diversity and community composition compared to those of the three host cultivars. Deterministic processes gradually increased along the soil-rhizosphere-root continuum in both bacterial and fungal communities. The co-occurrence network topological features showed that both bacterial and fungal community complexity and intensive interactions decreased along the soil-rhizosphere-root continuum. Different compartment niches clearly influenced bacterial-fungal interkingdom interactions, which were significantly higher in the rhizosphere, and positive interactions gradually dominated the co-occurrence networks from the bulk soil to the endosphere. The functional predictions showed that rhizosphere bacterial and fungal communities may have higher cellulolysis and saprotrophy capacities, respectively. Collectively, the root niches not only affected microbial diversity and community composition but also enhanced the positive interkingdom interactions between bacterial and fungal communities along the soil-rhizosphere-root continuum. This provides an essential basis for manipulating synthetic microbial communities for sustainable agriculture. The blueberry root-associated microbiome plays an essential role in its adaptation to acidic soils and in limiting the uptake of soil nutrients by its poor root system. Studies on the interactions of the root-associated microbiome in the various root niches may deepen our understanding of the beneficial effects in this particular habitat. Our study extended the research on the diversity and composition of microbial communities in different blueberry root compartment niches. Root niches dominated the root-associated microbiome compared to that of the host cultivar, and deterministic processes increased from the bulk soil to the endosphere. In addition, bacterial-fungal interkingdom interactions were significantly higher in the rhizosphere, and those positive interactions progressively dominated the co-occurrence network along the soil-rhizosphere-root continuum. Collectively, root niches dominantly affected the root-associated microbiome and the positive interkingdom interactions increased, potentially providing benefits for the blueberry.

摘要

植物根相关微生物组在促进植物健康、生产力和耐受生物/非生物胁迫方面发挥着关键作用。蓝莓(Vaccinium spp.)适应酸性土壤,而在各种根微环境下,这种特定生境中的根相关微生物组的相互作用仍不明确。在这里,我们研究了不同蓝莓根生境(土壤、根际土壤和根内圈)中细菌和真菌群落的多样性和群落组成。结果表明,与三种宿主品种相比,蓝莓根生境显著影响了根相关微生物组的多样性和群落组成。在细菌和真菌群落中,确定性过程沿着土壤-根际-根连续体逐渐增加。共生网络拓扑特征表明,细菌和真菌群落的复杂性和密集相互作用沿着土壤-根际-根连续体逐渐降低。不同隔室生境明显影响细菌-真菌种间相互作用,根际中的相互作用明显更高,阳性相互作用逐渐从土壤到内圈主导共生网络的共现。功能预测表明,根际细菌和真菌群落可能具有更高的纤维素分解和腐生能力。总的来说,根生境不仅影响微生物多样性和群落组成,而且沿着土壤-根际-根连续体增强了细菌和真菌群落之间的阳性种间相互作用。这为操纵合成微生物群落以实现可持续农业提供了重要基础。蓝莓根相关微生物组在其适应酸性土壤和限制其根系吸收土壤养分方面发挥着重要作用。研究不同根生境中根相关微生物组的相互作用可能会加深我们对这一特定生境中有益影响的理解。我们的研究扩展了对不同蓝莓根隔室生境中微生物群落多样性和组成的研究。与宿主品种相比,根生境主导根相关微生物组,确定性过程从土壤增加到内圈。此外,根际中的细菌-真菌种间相互作用明显更高,阳性相互作用沿着土壤-根际-根连续体逐渐主导共生网络。总的来说,根生境主要影响根相关微生物组,阳性种间相互作用增加,可能为蓝莓提供益处。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/34a4/10269492/6c6c3e03fe84/spectrum.05333-22-f001.jpg

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