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Miscanthus cultivation shapes rhizosphere microbial community structure and function as assessed by Illumina MiSeq sequencing combined with PICRUSt and FUNGUIld analyses

机译:miscanthus培养形状是由illumina miseq测序评估的根际微生物群落结构和功能,相结合Picrust和Fungueld分析

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Soil microbes play important roles in plant growth and in the biogeochemical cycling of earth's elements. However, the structure and functions of the microbial community associated with the growth of second-generation energy crops, such as Miscanthus, remain unclear. Thus, in this study, the composition and function of the bacterial and fungal communities associated with Miscanthus cultivation were analyzed by MiSeq sequencing combined with PICRUSt and FUNGUIld analyses. The results of community composition and diversity index analyses showed that Miscanthus cultivation significantly altered the bacterial and fungal community composition and reduced bacterial and fungal diversity. In addition, Miscanthus cultivation increased the soil organic matter (SOM) and total nitrogen (TN) contents. The correlation analysis between microbial community composition and environmental factors indicated that SOM and TN were the most important factors affecting bacterial and fungal communities. Miscanthus cultivation could enrich the abundances of Pseudomonas, Rhizobium, Luteibacter, Bradyrhizobium, Phenylobacterium and other common plant-promoting bacteria, while also increasing Cladophialophora, Hymenula, Magnaporthe, Mariannaea, etc., which predicted corresponded to the saprotrophic, plant pathogenic, and pathotrophic trophic modes. The PICRUSt predictive analysis indicated that Miscanthus cultivation altered the metabolic capabilities of bacterial communities, including the metabolism of carbon, nitrogen, and phosphorus cycle. In addition, FUNGUIld analysis indicated that Miscanthus cultivation altered the fungal trophic mode. The effects of Miscanthus on the communities and function of bacteria and fungi varied among Miscanthus species. Miscanthus specie Xiangdi NO 1 had the greatest impact on soil bacterial and fungal communities, whereas Miscanthus specie Wujiemang NO 1 had the greatest impact on soil bacteria and fungi functions. The results of this study provide a reference for the composition and function of microbial communities during the growth of Miscanthus.
机译:土壤微生物在植物生长和地球元素的生物地球化学循环中发挥重要作用。然而,与二代能量作物的生长相关的微生物群落的结构和功能,例如MISCANTHUS,仍不清楚。因此,在该研究中,通过MISEQ测序与Picrust和Fungueld分析相结合分析了与Miscanthus培养相关的细菌和真菌社区的组成和功能。群落成分和多样性指数分析结果表明,误生栽培显着改变了细菌和真菌群落组成和降低的细菌和真菌多样性。此外,MISCanthus培养增加了土壤有机物(SOM)和总氮(TN)含量。微生物群落组成与环境因素之间的相关分析表明,SOM和TN是影响细菌和真菌社区的最重要因素。 Miscanthus培养可以丰富假单胞菌,根瘤菌,螯合杆菌,Bradyrhizobium,苯基杆菌和其他常见植物促进细菌的丰富,同时还增加了预测到脂肪养,植物病原和病理养殖和病理养殖和病理养殖营养模式。 Picrust预测分析表明,Miscanthus培养改变了细菌群落的代谢能力,包括碳,氮和磷循环的代谢。此外,Fungueld分析表明Miscanthus培养改变了真菌营养模式。 Miscanthus对细菌和真菌的社区和功能不同的影响。 Miscanthus Specie Xiangdi No 1对土壤细菌和真菌社区产生了最大的影响,而Miscanthus Specie Memang No 1对土壤细菌和真菌功能的影响最大。该研究的结果为Miscanthus生长期间提供了微生物群落的组成和功能的参考。

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