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Arbuscular Mycorrhiza and Nitrification: Disentangling Processes and Players by Using Synthetic Nitrification Inhibitors

机译:丛枝菌根和硝化作用:使用合成硝化抑制剂解开过程和参与者

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摘要

Both plants and their associated arbuscular mycorrhizal (AM) fungi require nitrogen (N) for their metabolism and growth. This can result in both positive and negative effects of AM symbiosis on plant N nutrition. Either way, the demand for and efficiency of uptake of mineral N from the soil by mycorrhizal plants are often higher than those of nonmycorrhizal plants. In consequence, the symbiosis of plants with AM fungi exerts important feedbacks on soil processes in general and N cycling in particular. Here, we investigated the role of the AM symbiosis in N uptake by Andropogon gerardii from an organic source (N-15-labeled plant litter) that was provided beyond the direct reach of roots. In addition, we tested if pathways of N-15 uptake from litter by mycorrhizal hyphae were affected by amendment with different synthetic nitrification inhibitors (dicyandiamide DCD, nitrapyrin, or 3,4-dimethylpyrazole phosphate DMPP). We observed efficient acquisition of N-15 by mycorrhizal plants through the mycorrhizal pathway, independent of nitrification inhibitors. These results were in stark contrast to N-15 uptake by nonmycorrhizal plants, which generally took up much less N-15, and the uptake was further suppressed by nitrapyrin or DMPP amendments. Quantitative real-time PCR analyses showed that bacteria involved in the rate-limiting step of nitrification, ammonia oxidation, were suppressed similarly by the presence of AM fungi and by nitrapyrin or DMPP (but not DCD) amendments. On the other hand, abundances of ammonia-oxidizing archaea were not strongly affected by either the AM fungi or the nitrification inhibitors. IMPORTANCE Nitrogen is one of the most important elements for all life on Earth. In soil, N is present in various chemical forms and is fiercely competed for by various microorganisms as well as plants. Here, we address competition for reduced N (ammonia) between ammonia-oxidizing prokaryotes and arbuscular mycorrhizal fungi. These two functionally important groups of soil microorganisms, participating in nitrification and plant mineral nutrient acquisition, respectively, have often been studied in separation in the past. Here, we showed, using various biochemical and molecular approaches, that the fungi systematically suppress ammonia-oxidizing bacteria to an extent similar to that of some widely used synthetic nitrification inhibitors, whereas they have only a limited impact on abundance of ammonia-oxidizing archaea. Competition for free ammonium is a plausible explanation here, but it is also possible that the fungi produce some compounds acting as so-called biological nitrification inhibitors. Nitrogen is one of the most important elements for all life on Earth. In soil, N is present in various chemical forms and is fiercely competed for by various microorganisms as well as plants.
机译:植物及其相关的丛枝菌根 (AM) 真菌都需要氮 (N) 进行新陈代谢和生长。这可能导致AM共生对植物氮营养的积极和消极影响。无论哪种方式,菌根植物对土壤中矿物质氮的需求和吸收效率通常高于非菌根植物。因此,植物与AM真菌的共生对土壤过程,特别是氮循环产生了重要的反馈。在这里,我们研究了AM共生在Andropogon gerardii从有机来源(N-15标记的植物凋落物)吸收氮的作用,该来源位于根系无法直接到达的地方。此外,我们测试了菌根菌丝从凋落物中吸收N-15的途径是否受到不同合成硝化抑制剂(双氰胺[DCD]、硝曲比林或3,4-二甲基吡唑磷酸盐[DMPP])修饰的影响。我们观察到菌根植物通过菌根途径有效获取N-15,与硝化抑制剂无关。这些结果与非菌根植物对N-15的吸收形成鲜明对比,非菌根植物对N-15的吸收通常要少得多,并且硝曲霉素或DMPP改良剂进一步抑制了N-15的吸收。定量实时荧光定量PCR分析表明,参与硝化限速步骤(氨氧化)的细菌同样受到AM真菌和硝化霉素或DMPP(但非DCD)改良剂的抑制。另一方面,氨氧化古细菌的丰度不受AM真菌或硝化抑制剂的强烈影响。重要性 氮是地球上所有生命中最重要的元素之一。在土壤中,氮以各种化学形式存在,并被各种微生物和植物激烈竞争。在这里,我们解决了氨氧化原核生物和丛枝菌根真菌之间减少氮(氨)的竞争。这两个功能重要的土壤微生物群分别参与硝化作用和植物矿物养分获取,过去经常在分离中进行研究。在这里,我们使用各种生化和分子方法表明,真菌系统地抑制氨氧化细菌的程度与一些广泛使用的合成硝化抑制剂相似,而它们对氨氧化古细菌的丰度影响有限。对游离铵的竞争在这里是一个合理的解释,但真菌也有可能产生一些化合物,充当所谓的生物硝化抑制剂。氮是地球上所有生命中最重要的元素之一。在土壤中,氮以各种化学形式存在,并被各种微生物和植物激烈竞争。

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