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首页> 外文期刊>Land Degradation and Development >Temporal dynamics of soil bacterial communities and multifunctionality are more sensitive to introduced plants than to microbial additions in a multicontaminated soil
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Temporal dynamics of soil bacterial communities and multifunctionality are more sensitive to introduced plants than to microbial additions in a multicontaminated soil

机译:土壤细菌群落的时间动态和多功能性对引入的植物更敏感,而不是多污染土壤中的微生物添加

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摘要

Soil microbial communities are crucial for regulating the stability and degradation of contaminated land. However, the temporal response strategies of particular microbial groups to biotic introductions and their contributions to ecosystem functions and services (i.e., multifunctionality') in contaminated soils have yet to be investigated. Here, we present results from a 90-day microcosm experiment aiming to evaluate the temporal changes in bacterial communities and functions in response to microbial and plant additions in a contaminated agricultural soil. In addition, we quantified the contributions of specific bacterial taxa with different response strategies over time to alterations in ecosystem multifunctionality in pollutant degradation (polyphenol oxidase) and the cycling of carbon (dehydrogenase), nitrogen (urease and available nitrogen), phosphorus (available phosphorus), and potassium (available potassium). Results showed that native bacterial communities exhibited strong resilience to the introduced microbial consortium and were altered by plant growth. Plant-enriched bacterial taxa were located in the core and central positions of the co-occurrence networks and had considerable influence on the other nodes. Plant growth substantially influenced soil multifunctionality, in a process driven by specific bacterial taxa with different response strategies. The more tolerant taxa contributed most to multienzyme activities, whereas the more affected taxa largely determined multinutrient levels in the soil. These results provide a new perspective in disentangling the roles of plant-associated bacteria in the assembly of community interactions and ecosystem multifunctionality of contaminated agricultural soils.
机译:土壤微生物社区对于调节受污染土地的稳定性和降解至关重要。然而,特定微生物组的时间响应策略与生物介绍的生物介绍及其对污染土壤中的生态系统功能和服务的贡献(即,多功能性“)尚未得到调查。在这里,我们提出的90天微观实验的结果,旨在评估细菌群落的时间变化和响应于污染的农业土壤中的微生物和植物添加。此外,我们随着时间的推移量化特异性细菌分类群的贡献与污染物降解(多酚氧化酶)和碳(脱氢酶),氮(脲酶和可用氮气),磷(可用磷的循环)的生态系统多功能)和钾(可用钾)。结果表明,本土细菌社区对引入的微生物联盟表现出强烈的韧性,并通过植物生长改变。富含植物的细菌分类群位于共同发生网络的核心和中央位置,对其他节点具有相当大的影响。植物生长基本上影响了土壤多功能性,在具有不同反应策略的特异性细菌分类群的过程中的过程中。耐受性较高的分类群对偏见活动的影响越多,而较大的含税越大,土壤中的多重水平越大。这些结果提供了在群体相互作用组合和污染的农业土壤的群体相互作用和生态系统多官能团中解散植物相关细菌的作用的新观点。

著录项

  • 来源
    《Land Degradation and Development》 |2019年第7期|共14页
  • 作者单位

    Northwest A&

    F Univ Coll Life Sci State Key Lab Crop Stress Biol Arid Areas Yangling 712100 Shaanxi Peoples R China;

    Northwest A&

    F Univ Coll Life Sci State Key Lab Crop Stress Biol Arid Areas Yangling 712100 Shaanxi Peoples R China;

    Northwest A&

    F Univ Coll Life Sci State Key Lab Crop Stress Biol Arid Areas Yangling 712100 Shaanxi Peoples R China;

    Northwest A&

    F Univ Coll Life Sci State Key Lab Crop Stress Biol Arid Areas Yangling 712100 Shaanxi Peoples R China;

    Northwest A&

    F Univ Coll Life Sci State Key Lab Crop Stress Biol Arid Areas Yangling 712100 Shaanxi Peoples R China;

    Northwest A&

    F Univ Coll Life Sci State Key Lab Crop Stress Biol Arid Areas Yangling 712100 Shaanxi Peoples R China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 土壤学;
  • 关键词

    biotic introduction; degraded land restoration; ecosystem multifunctionality; response strategy; soil contamination; temporal microcosm;

    机译:生物介绍;降级的土地恢复;生态系统多功能;反应策略;土壤污染;颞粒子微观;

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