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Comparative Metagenomics Reveals Enhanced Nutrient Cycling Potential after 2 Years of Biochar Amendment in a Tropical Oxisol

机译:比较元基因组学揭示了热带氧气中2年生物炭修正后增强的营养循环潜力。

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The complex structural and functional responses of agricultural soil microbial communities to the addition of carbonaceous compounds such as biochar remain poorly understood. This severely limits the predictive ability for both the potential enhancement of soil fertility and greenhouse gas mitigation. In this study, we utilized shotgun metagenomics in order to decipher changes in the microbial community in soil microcosms after 14?days of incubation at 23°C, which contained soils from biochar-amended and control plots cultivated with Napier grass. Our analyses revealed that biochar-amended soil microbiomes exhibited significant shifts in both community composition and predicted metabolism. Key metabolic pathways related to carbon turnover, such as the utilization of plant-derived carbohydrates as well as denitrification, were enriched under biochar amendment. These community shifts were in part associated with increased soil carbon, such as labile and aromatic carbon compounds, which was likely stimulated by the increased available nutrients associated with biochar amendment. These findings indicate that the soil microbiome response to the combination of biochar addition and to incubation conditions confers enhanced nutrient cycling and a small decrease in CO2 emissions and potentially mitigates nitrous oxide emissions.IMPORTANCE The incorporation of biochar into soil is a promising management strategy for sustainable agriculture owing to its potential to sequester carbon and improve soil fertility. Expanding the addition of biochar to large-scale agriculture hinges on its lasting beneficial effects on the microbial community. However, there exists a significant knowledge gap regarding the specific role that biochar plays in altering the key biological soil processes that influence plant growth and carbon storage in soil. Previous studies that examined the soil microbiome under biochar amendment principally characterized only how the composition alters in response to biochar amendment. In the present study, we shed light on the functional alterations of the microbial community response 2 years after biochar amendment. Our results show that biochar increased the abundance of genes involved in denitrification and carbon turnover and that biochar-amended soil microcosms had a reduction in cumulative CO2 production.
机译:对农业土壤微生物群落对添加含碳化合物(如生物炭)的复杂结构和功能响应仍然知之甚少。这严重限制了土壤肥力和温室气体减排潜力的预测能力。在这项研究中,我们利用shot弹枪宏基因组学来解密在23°C孵育14天后土壤微观世界中微生物群落的变化,其中包含来自用纳皮尔草栽培的生物炭改良和对照样地的土壤。我们的分析表明,生物炭改良的土壤微生物组在群落组成和预测的代谢方面均表现出明显的变化。在生物炭修正下,丰富了与碳转换相关的关键代谢途径,例如利用植物来源的碳水化合物以及反硝化作用。这些群落变化部分与土壤碳含量增加有关,例如不稳定和芳香碳化合物,这可能是由于与生物炭改良相关的可用养分增加而刺激的。这些发现表明,土壤微生物组对生物炭添加和孵化条件的综合反应可增强养分循环并减少二氧化碳排放量,并有可能减轻一氧化二氮的排放。将生物炭掺入土壤是可持续发展的有前途的管理策略农业,因为它具有隔离碳和改善土壤肥力的潜力。将生物炭添加到大规模农业中,取决于其对微生物群落的持久有益作用。但是,关于生物炭在改变影响植物生长和土壤中碳存储的关键生物土壤过程中所起的特定作用,存在很大的知识空白。先前研究了生物炭改良下的土壤微生物组的先前研究主要仅表征了其成分如何响应生物炭改良而改变。在本研究中,我们阐明了生物炭改良后2年微生物群落反应的功能改变。我们的结果表明,生物炭增加了反硝化和碳转化相关基因的丰度,而经过生物炭改良的土壤微观世界减少了累积的CO2产生。

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