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Archaeal Ammonia Oxidizers Dominate in Numbers, but Bacteria Drive Gross Nitrification in N-amended Grassland Soil

机译:古细菌氨氧化剂的数量占主导地位,但细菌推动了氮改良的草地土壤中的总硝化作用

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摘要

Both ammonia-oxidizing archaea (AOA) and ammonia-oxidizing bacteria (AOB) play an important role in nitrification in terrestrial environments. Most often AOA outnumber AOB, but the relative contribution of AOA and AOB to nitrification rates remains unclear. The aim of this experiment was to test the hypotheses that high nitrogen availability would favor AOB and result in high gross nitrification rates, while high carbon availability would result in low nitrogen concentrations that favor the activity of AOA. The hypotheses were tested in a microcosm experiment where sugars, ammonium, or amino acids were added regularly to a grassland soil for a period of 33 days. The abundance of amoA genes from AOB increased markedly in treatments that received nitrogen, suggesting that AOB were the main ammonia oxidizers here. However, AOB could not account for the entire ammonia oxidation activity observed in treatments where the soil was deficient in available nitrogen. The findings suggest that AOA are important drivers of nitrification under nitrogen-poor conditions, but that input of easily available nitrogen results in increased abundance, activity, and relative importance of AOB for gross nitrification in grassland soil.
机译:氨氧化古细菌(AOA)和氨氧化细菌(AOB)在陆地环境中的硝化中均起重要作用。最常见的是AOA超过AOB,但是AOA和AOB对硝化速率的相对贡献仍然不清楚。该实验的目的是检验以下假设:较高的氮利用率将有利于AOB并导致较高的总硝化率,而较高的碳利用率将导致较低的氮浓度,从而有利于AOA的活性。假设是在缩影实验中测试的,其中将糖,铵或氨基酸定期添加到草原土壤中,持续33天。在接受氮的处理中,来自AOB的amoA基因的丰度显着增加,这表明AOB是这里的主要氨氧化剂。但是,AOB不能解释在土壤中缺乏可用氮的处理中观察到的全部氨氧化活性。研究结果表明,在氮缺乏的条件下,AOA是硝化的重要驱动力,但是容易获得的氮的输入会增加AOB对草地土壤总硝化的丰度,活性和相对重要性。

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