Organic connection of holobiont components and the essential roles of core microbes in the holobiont formation of feral Brassica napus

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Title
Organic connection of holobiont components and the essential roles of core microbes in the holobiont formation of feral Brassica napus
Author(s)
S J Chun; YingShun Cui; S H Yoo; J R Lee
Bibliographic Citation
Frontiers in Microbiology, vol. 13, pp. 920759-920759
Publication Year
2022
Abstract
Brassica napus (Rapeseed) is an econfomically important oil-producing crop. The microbial interactions in the plant holobiont are fundamental to the understanding of plant growth and health. To investigate the microbial dynamics in the holobiont of feral B. napus, a total of 215 holobiont samples, comprised of bulk soil, primary root, lateral root, dead leaf, caulosphere, basal leaf, apical leaf, carposphere, and anthosphere, were collected from five different grassland sites in South Korea. The soil properties differed in different sampling sites, but prokaryotic communities were segregated according to plant holobiont components. The structures of the site-specific SparCC networks were similar across the regions. Recurrent patterns were found in the plant holobionts in the recurrent network. Ralstonia sp., Massilia sp., and Rhizobium clusters were observed consistently and were identified as core taxa in the phyllosphere, dead leaf microbiome, and rhizosphere, respectively. Arthropod-related microbes, such as Wolbachia sp., Gilliamella sp., and Corynebacteriales amplicon sequence variants, were found in the anthosphere. PICRUSt2 analysis revealed that microbes also possessed specific functions related to holobiont components, such as functions related to degradation pathways in the dead leaf microbiome. Structural equation modeling analysis showed the organic connections among holobiont components and the essential roles of the core microbes in the holobiont formations in natural ecosystem. Microbes coexisting in a specific plant showed relatively stable community structures, even though the regions and soil characteristics were different. Microbes in each plant component were organically connected to form their own plant holobiont. In addition, plant-related microbes, especially core microbes in each holobiont, showed recurrent interaction patterns that are essential to an understanding of the survival and coexistence of plant microbes in natural ecosystems.
Keyword
Brassica napusPlant holobiontMicrobial networkRecurrent patternNatural ecosystem
ISSN
1664-302x
Publisher
Frontiers Media Sa
Full Text Link
http://dx.doi.org/10.3389/fmicb.2022.920759
Type
Article
Appears in Collections:
1. Journal Articles > Journal Articles
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