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Influence of plant traits, soil microbial properties, and abiotic parameters on nitrogen turnover of grassland ecosystems

机译:植物性状,土壤微生物特性和非生物参数对草地生态系统氮素周转的影响

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Although it is known that multiple interactions among plant functional traits, microbial properties, and abiotic soil parameters influence the nutrient turnover, the relative contribution of each of these groups of variables is poorly understood. We manipulated grassland plant functional composition and soil nitrogen (N) availability in a multisite mesocosm experiment to quantify their relative effects on soil N turnover. Overall, root traits, arbuscular mycorrhizal colonization, denitrification potential, as well as N availability and water availability, best explained the variation in measured ecosystem properties, especially the trade‐off between nutrient sequestration and plant biomass production. Their relative contributions varied with soil N availability. In relatively N‐poor soils (10–20?μg·N·g~(?1) soil), N turnover was mainly controlled by microbial properties and abiotic soil parameters, whereas in the relatively N‐rich soils (110–120?μg·N·g~(?1) soil), N turnover was mainly controlled by plant traits and microbial properties. This experiment is a strong demonstration of the importance of functional characteristics of both plants and soil microbes, and their interplay with soil N availability, for N turnover in grassland soils.
机译:尽管已知植物功能性状,微生物特性和非生物土壤参数之间的多重相互作用会影响养分周转,但对这些变量组中每组变量的相对贡献知之甚少。我们在一个多站点中观试验中控制了草原植物的功能成分和土壤氮素的有效性,以量化它们对土壤氮素周转的相对影响。总体而言,根部性状,丛枝菌根定植,反硝化潜力以及氮素的有效性和水的有效性,可以最好地解释所测生态系统特性的变化,尤其是养分固存和植物生物量生产之间的权衡。它们的相对贡献随土壤氮的有效性而变化。在氮含量相对较低的土壤(10–20?μg·N·g〜(?1)土壤)中,氮的转化主要受微生物特性和非生物性土壤参数的控制,而氮含量相对较高的土壤(110–120? (μg·N·g〜(?1)土壤),氮素周转主要受植物性状和微生物特性的控制。该实验强有力地证明了植物和土壤微生物的功能特征及其与土壤氮素的相互作用对草地土壤氮素转化的重要性。

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