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Ecological significance of nitrifier and denitrifier spatial patterns in three Arctic ecosystems.

机译:三种北极生态系统中硝化和反硝化空间格局的生态意义。

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摘要

Owing to spatial variability of soil properties, microbial communities and their functional role in biogeochemical processes may also vary across multiple spatial scales. Soil and microbial spatial heterogeneity has been studied in various tropical and temperate ecosystems yet no information is available from Arctic permafrost ecosystems. These ecosystems represent a significant proportion of global land mass and contain about one fourth of total soil carbon pool. Soil microbial N transformations such as nitrification and denitrification have significant implications for N availability and N loss in nutrient-limited Arctic ecosystems. This study aims to elucidate 1) the spatial variability of soil attributes and the overall microbial communities 2) the spatial structure of ammonia oxidizer and denitrifier abundance and their activities, and 3) relationships among microbial communities, functional processes, and soil attributes in three Arctic Cryosolic ecosystems. The results show that despite challenging climatic conditions and the regular occurrence of cryopedogenic processes, soil properties and microbial abundance are highly spatially dependent and their spatial autocorrelation is consistent within and between the ecohabitats. Despite similar abundances, the zone of spatial autocorrelation is substantially smaller than other ecosystems. The correlations between moisture content and other soil attributes in Arctic are considerably higher than temperate agricultural and tropical grassland soils, suggesting the critical role of moisture in Arctic soil ecosystems. Ammonia-oxidizing archaeal and bacterial communities and aerobic ammonia oxidation were spatially dependent. Functional groups were spatially structured within 4 m whereas biochemical processes were structured within 40 m. Ammonia oxidation was driven at small scales (<1 m) by moisture and total organic carbon content whereas gene abundance and other edaphic factors drove ammonia oxidation at medium (1-10 m) and large (10-100 m) scales. Denitrifier functional groups and potential denitrification were spatially autocorrelated within a scale of 5 m. Soil moisture, organic carbon and nitrogen content were the predominant driving factors with nirK abundance also correlated to potential denitrification. This is the first study to report high spatial dependence of soil properties, overall microbial, ammonia oxidizing, and denitrifying communities, and functional processes in Canadian Arctic. It disentangles the associations among the aforementioned parameters to identify the key controls on nitrification and denitrification in Cryosolic ecosystems.
机译:由于土壤特性的空间变异性,微生物群落及其在生物地球化学过程中的功能作用也可能在多个空间尺度上变化。已经在各种热带和温带生态系统中研究了土壤和微生物的空间异质性,但没有北极永久冻土生态系统的信息。这些生态系统占全球土地面积的很大一部分,占土壤总碳库的约四分之一。土壤微生物氮的转化(例如硝化和反硝化)对营养有限的北极生态系统中的氮素有效性和氮素损失具有重大影响。这项研究旨在阐明1)土壤属性和整个微生物群落的空间变异性2)氨氧化和反硝化剂丰度及其活动的空间结构,以及3)三个北极地区微生物群落,功能过程和土壤属性之间的关系低温生态系统。结果表明,尽管气候条件具有挑战性,并且深冷过程经常发生,但土壤性质和微生物丰度在空间上高度依赖,并且它们在生态栖息地内和生态居之间的空间自相关是一致的。尽管存在类似的丰度,但空间自相关区域却比其他生态系统小得多。北极的水分含量与其他土壤属性之间的相关性远高于温带农业和热带草原土壤,这表明水分在北极土壤生态系统中起着至关重要的作用。氨氧化古细菌和细菌群落以及需氧氨氧化在空间上是依赖的。官能团在4 m内空间结构化,而生化过程在40 m内结构化。氨气的氧化是由水分和总有机碳含量在小规模(<1 m)下驱动的,而基因丰度和其他影响因素推动了中等规模(1-10 m)和大规模(10-100 m)下的氨氧化。反硝化剂官能团和潜在的反硝化作用在5 m的范围内在空间上自相关。土壤水分,有机碳和氮含量是主要驱动因素,nirK丰度也与潜在的反硝化作用有关。这是第一项报道加拿大北极地区土壤特性,整体微生物,氨氧化和反硝化群落以及功能过程高度依赖空间的研究。它解开了上述参数之间的关联,从而确定了低温生态系统中硝化和反硝化的关键控制。

著录项

  • 作者

    Banerjee, Samiran.;

  • 作者单位

    The University of Saskatchewan (Canada).;

  • 授予单位 The University of Saskatchewan (Canada).;
  • 学科 Biology Microbiology.;Environmental Sciences.;Agriculture Soil Science.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 153 p.
  • 总页数 153
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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