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Exploring bacterial communities and their function for soil health under different cropping systems.

机译:探索不同种植方式下细菌群落及其对土壤健康的作用。

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摘要

Rhizosphere and soil bacteria are important drivers in nearly all biochemical cycles in terrestrial ecosystems and participate in maintaining health and productivity of soil in agriculturally managed systems. However, the effect of agricultural management systems on bacterial communities is still poorly understood. In this study, cultural methods and advanced molecular methods (terminal restriction fragment length polymorphism (TRFLP) and 454- pyrosequencing) were used to identify shifts in soil and rhizosphere bacterial diversity, community composition, and functions under different cropping systems in Manitoba, Canada. This included monoculture vs. rotation, zero tillage vs. conventional tillage, and organic farming vs. conventional farming.;Results showed that: (1) different cropping systems did not significantly influence the diversity of bacterial communities. However, a significant variation in relative abundances of bacterial communities at both the phylum and genus level was observed among different cropping systems. Compared to conventional farming systems, organic farming system had a higher percentage of the phylum Proteobacteria (many Plant Growth Promoting Rhizosbacteria) and a lower percentage of the phylum Actinobacteria. When canola monoculture was compared to wheat-oat-canola-pea rotation, a significantly higher percentage of Proteobacteria and a lower percentage of Actinobacteria were found in the rotational system. Wheat monoculture shared similar bacterial communities with wheat-oat-canola-pea rotation. Zero tillage did not change bacterial community profiles except for an increase in Firmicutes (many PGPR), compared to conventional tillage. At the genus level, significant differences were found for the dominant genera Pseudomonas, Rhizobium, Stenotrophomonas, Brevundimonas, Burkholderia, Marmoricola, Microlunatus, and Solirubrobacter. The bacterial distribution was strongly associated with soil pH. (2) The cropping systems also influenced the antibiotic-producing Pseudomonas populations determined through PCR-based screening for the detection of genes involved in the biosynthesis of antibiotics. It was found that pyrrolnitrin- and phenazine- producing Pseudomonas spp. were more prevalent in the soil under zero tillage and organic farming systems, while 2,4-DAPG and pyoluteorin-producing strains were not found in this study.;This comprehensive study provided fundamental information on how different cropping systems affect soil and rhizosphere bacterial communities, which can be used to guide Manitoba farmers to choose proper farming systems to maintain soil health and increase PGPR populations in soil.
机译:根际和土壤细菌是陆地生态系统几乎所有生化循环中的重要驱动力,并参与维护农业管理系统中土壤的健康和生产力。但是,农业管理系统对细菌群落的影响仍然知之甚少。在这项研究中,采用文化方法和先进的分子方法(末端限制性片段长度多态性(TRFLP)和454-焦磷酸测序)来确定加拿大曼尼托巴省不同种植系统下土壤和根际细菌多样性,群落组成和功能的变化。这包括单一栽培与轮作,零耕与常规耕作以及有机耕作与常规耕作。结果表明:(1)不同的耕作制度对细菌群落的多样性没有显着影响。然而,在不同的种植系统中,在门和属水平上细菌群落的相对丰度都有显着变化。与传统的耕作系统相比,有机耕作系统的Proteobacteria门(较高的植物生长根瘤菌)比例更高,而Actinobacteria门则更低。将油菜单种栽培与小麦-燕麦-油菜-豌豆轮作进行比较时,在轮作系统中发现了高得多的变形杆菌和低比例的放线菌。小麦单一栽培与小麦-燕麦-油菜-豌豆轮作具有相似的细菌群落。与传统耕作相比,零耕作不会改变细菌群落特征,除了硬毛增加(许多PGPR)。在属水平上,发现优势属为假单胞菌属,根瘤菌,嗜麦芽单胞菌属,短杆菌属,伯克霍尔德氏菌,马莫里科拉菌,微月球菌和单核细菌。细菌分布与土壤pH值密切相关。 (2)种植系统还影响了通过基于PCR的筛选确定的生产抗生素的假单胞菌种群,以检测涉及抗生素生物合成的基因。已发现产生吡咯菌素和吩嗪的假单胞菌属物种。在零耕作和有机耕作制度下土壤中更普遍,而在本研究中未发现2,4-DAPG和产黄腐素的菌株。该综合研究提供了有关不同耕作制度如何影响土壤和根际细菌群落的基本信息。 ,可以用来指导曼尼托巴省农民选择适当的耕作制度,以维持土壤健康并增加土壤中的PGPR种群。

著录项

  • 作者

    Li, Ru.;

  • 作者单位

    University of Manitoba (Canada).;

  • 授予单位 University of Manitoba (Canada).;
  • 学科 Agriculture Plant Pathology.;Agriculture Soil Science.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 187 p.
  • 总页数 187
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:40:54

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