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A preliminary examination of bacterial archaeal and fungal communities inhabiting different rhizocompartments of tomato plants under real-world environments

机译:在真实环境下对居住在番茄植物不同根际区室的细菌古细菌和真菌群落的初步检查

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摘要

Plant microbiota is a key determinant of plant health and productivity. The composition and structure of plant microbiota varies according to plant tissue and compartment, which are specific habitats for microbial colonization. To investigate the structural composition of the microbiome associated with tomato roots under natural systems, we characterized the bacterial, archaeal, and fungal communities of three belowground compartments (rhizosphere, endosphere, and bulk soil) of tomato plants collected from 23 greenhouses in 7 geographic locations of South Korea. The microbial diversity and structure varied by rhizocompartment, with the most distinctive community features found in the endosphere. The bacterial and fungal communities in the bulk soil and rhizosphere were correlated with soil physicochemical properties, such as pH, electrical conductivity, and exchangeable cation levels, while this trend was not evident in the endosphere samples. A small number of core bacterial operational taxonomic units (OTUs) present in all samples from the rhizosphere and endosphere represented more than 60% of the total relative abundance. Among these core microbes, OTUs belonging to the genera Acidovorax, Enterobacter, Pseudomonas, Rhizobium, Streptomyces, and Variovorax, members of which are known to have beneficial effects on plant growth, were more relatively abundant in the endosphere samples. A co-occurrence network analysis indicated that the microbial community in the rhizosphere had a larger and more complex network than those in the bulk soil and endosphere. The analysis also identified keystone taxa that might play important roles in microbe-microbe interactions in the community. Additionally, profiling of predicted gene functions identified many genes associated with membrane transport in the endospheric and rhizospheric communities. Overall, the data presented here provide preliminary insight into bacterial, archaeal, and fungal phylogeny, functionality, and interactions in the rhizocompartments of tomato roots under real-world environments.
机译:植物微生物群是植物健康和生产力的关键决定因素。植物微生物群的组成和结构根据植物组织和区室而变化,植物组织和区室是微生物定植的特定生境。为了研究自然系统下与番茄根相关的微生物组的结构组成,我们对从7个地理位置的23个温室中收集的三个番茄地下室(根际,内层和大块土壤)的细菌,古细菌和真菌群落进行了表征韩国。根际区室的微生物多样性和结构各不相同,在球内层具有最独特的群落特征。大块土壤和根际中的细菌和真菌群落与土壤理化特性(例如pH,电导率和可交换阳离子水平)相关,而在内球样品中这种趋势并不明显。根际和内圈所有样品中存在的少量核心细菌操作生物分类单位(OTU)占总相对丰度的60%以上。在这些核心微生物中,属于内生球菌样品的酸菌属,肠杆菌属,假单胞菌属,根瘤菌属,链霉菌属和Variovorax属的OTU相对较丰富,这些成员对植物的生长具有有益作用。共生网络分析表明,根际微生物群落比散装土壤和内层微生物群落具有更大,更复杂的网络。分析还确定了基石分类群,它们可能在社区中微生物与微生物的相互作用中起重要作用。此外,对预测基因功能的分析鉴定了许多与内球和根际群落中的膜运输相关的基因。总体而言,此处提供的数据提供了在真实环境下番茄根际区隔中细菌,古细菌和真菌的系统发育,功能以及相互作用的初步见识。

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