Institute of Ecology and Earth Sciences, University of Tartu, Juhan Liivi 2, 50409, Tartu, Estonia.
Mycology and Microbiology Center, University of Tartu, Juhan Liivi 2, 50409, Tartu, Estonia.
New Phytol. 2023 Jun;238(6):2607-2620. doi: 10.1111/nph.18897. Epub 2023 Apr 10.
Nitrogen (N) deposition and soil acidification are environmental challenges affecting ecosystem functioning, health, and biodiversity, but their effects on functional genes are poorly understood. Here, we utilized metabarcoding and metagenomics to investigate the responses of soil functional genes to N deposition along a natural soil pH gradient. Soil N content was uncorrelated with pH, enabling us to investigate their effects separately. Soil acidity strongly and negatively affected the relative abundances of most cluster of orthologous gene categories of the metabolism supercategory. Similarly, soil acidity negatively affected the diversity of functional genes related to carbon and N but not phosphorus cycling. Multivariate analyses showed that soil pH was the most important factor affecting microbial and functional gene composition, while the effects of N deposition were less important. Relative abundance of KEGG functional modules related to different parts of the studied cycles showed variable responses to soil acidity and N deposition. Furthermore, our results suggested that the diversity-function relationship reported for other organisms also applies to soil microbiomes. Since N deposition and soil pH affected microbial taxonomic and functional composition to a different extent, we conclude that N deposition effects might be primarily mediated through soil acidification in forest ecosystems.
氮(N)沉降和土壤酸化是影响生态系统功能、健康和生物多样性的环境挑战,但它们对功能基因的影响仍知之甚少。在这里,我们利用宏条形码和宏基因组学技术,沿着自然土壤 pH 梯度,研究了土壤功能基因对 N 沉降的响应。土壤 N 含量与 pH 值无关,这使我们能够分别研究它们的影响。土壤酸度强烈且负地影响了代谢超级类群中大多数同源基因类别的相对丰度。同样,土壤酸度也负地影响了与碳和 N 循环而不是磷循环相关的功能基因的多样性。多元分析表明,土壤 pH 值是影响微生物和功能基因组成的最重要因素,而 N 沉降的影响则不那么重要。与所研究循环不同部分相关的 KEGG 功能模块的相对丰度对土壤酸度和 N 沉降表现出不同的响应。此外,我们的研究结果表明,其他生物的多样性-功能关系也适用于土壤微生物组。由于 N 沉降和土壤 pH 值对微生物分类和功能组成的影响程度不同,我们得出结论,N 沉降的影响可能主要通过森林生态系统中的土壤酸化来介导。