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Associations between soil bacterial community structure and nutrient cycling functions in long-term organic farm soils following cover crop and organic fertilizer amendment

机译:覆盖作物和有机肥改良后长期有机农田土壤细菌群落结构与养分循环功能之间的关联

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摘要

Agricultural management practices can produce changes in soil microbial populations whose functions are crucial to crop production and may be detectable using high-throughput sequencing of bacterial 16S rRNA. To apply sequencing-derived bacterial community structure data to on-farm decision-making will require a better understanding of the complex associations between soil microbial community structure and soil function. Here 16S rRNA sequencing was used to profile soil bacterial communities following application of cover crops and organic fertilizer treatments in certified organic field cropping systems. Amendment treatments were hairy vetch (Vicia villosa), winter rye (Secale cereale), oilseed radish (Raphanus sativus), buckwheat (Fagopyrum esculentum), beef manure, pelleted poultry manure, Sustane~® 8-2-4, and a no-amendment control. Enzyme activities, net N mineralization, soil respiration, and soil physicochemical properties including nutrient levels, organic matter (OM) and pH were measured. Relationships between these functional and physicochemical parameters and soil bacterial community structure were assessed using multivariate methods including redundancy analysis, discriminant analysis, and Bayesian inference. Several cover crops and fertilizers affected soil functions including N-acetyl-β-D-glucosaminidase and β-glucosidase activity. Effects, however, were not consistent across locations and sampling timepoints. Correlations were observed among functional parameters and relative abundances of individual bacterial families and phyla. Bayesian analysis inferred no directional relationships between functional activities, bacterial families, and physicochemical parameters. Soil functional profiles were more strongly predicted by location than by treatment, and differences were largely explained by soil physicochemical parameters. Composition of soil bacterial communities was predictive of soil functional profiles. Differences in soil function were better explained using both soil physicochemical test values and bacterial community structure data than using soil tests alone. Pursuing a better understanding of bacterial community composition and how it is affected by farming practices is a promising avenue for increasing our ability to predict the impact of management practices on important soil functions.
机译:农业管理实践可能会改变土壤微生物种群的变化,而土壤微生物种群的功能对于农作物的生产至关重要,并且可以使用细菌16S rRNA的高通量测序来检测。将测序来源的细菌群落结构数据应用于农场决策需要对土壤微生物群落结构和土壤功能之间的复杂联系有更好的了解。在认证的有机田间耕作系统中应用覆盖作物和有机肥料处理后,此处使用16S rRNA测序来分析土壤细菌群落。修正方法是紫罗兰(Vicia villosa),冬黑麦(Secale谷物),油菜萝卜(Raphanus sativus),荞麦(Fagopyrum esculentum),牛肉肥,家禽颗粒肥,Sustane〜®8-2-4,无修正控制。测量了酶活性,净氮矿化,土壤呼吸和土壤理化特性,包括营养水平,有机质(OM)和pH。这些功能和理化参数与土壤细菌群落结构之间的关系使用多元方法进行了评估,包括冗余分析,判别分析和贝叶斯推断。几种覆盖作物和肥料影响了土壤功能,包括N-乙酰基-β-D-氨基葡萄糖苷酶和β-葡萄糖苷酶活性。但是,效果在各个位置和采样时间点之间并不一致。观察到功能参数以及各个细菌家族和门的相对丰度之间的相关性。贝叶斯分析推断功能活动,细菌家族和理化参数之间没有方向性关系。通过定位比通过处理更能预测土壤功能特征,并且很大程度上通过土壤理化参数来解释差异。土壤细菌群落的组成是土壤功能概况的预测。使用土壤理化测试值和细菌群落结构数据比单独使用土壤测试可以更好地解释土壤功能的差异。更好地了解细菌群落组成及其受农作法的影响是提高我们预测管理实践对重要土壤功能影响的能力的有前途的途径。

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  • 来源
    《The Science of the Total Environment》 |2016年第1期|949-959|共11页
  • 作者单位

    Department of Agronomy and Plant Genetics, University of Minnesota, St. Paul MN 55108, United States;

    Department of Agronomy and Plant Genetics, University of Minnesota, St. Paul MN 55108, United States;

    Department of Agronomy and Plant Genetics, University of Minnesota, St. Paul MN 55108, United States;

    BioTechnology Institute, University of Minnesota, St. Paul, MN 55108, United States;

    University of Minnesota Informatics Institute, University of Minnesota, Minneapolis, MN 55455, United States;

    BioTechnology Institute, University of Minnesota, 140 Gortner Lab, 1479 Gortner Ave., SL Paul, MN 55108, United States,Department of Soil Water, and Climate, University of Minnesota, St. Paul, MN 55108, United States;

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  • 正文语种 eng
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  • 入库时间 2022-08-17 13:50:28

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