镉胁迫下土壤微生物氮循环策略的动态研究

IF 10.8 1区 环境科学与生态学 Q1 ENGINEERING, ENVIRONMENTAL
Haochun Zhao, Jiahui Lin, Xuehua Wang, Jiachun Shi, Randy A. Dahlgren, Jianming Xu*
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引用次数: 27

摘要

全球土壤痕量金属污染的增加需要更好地了解金属胁迫对微生物介导的养分循环的影响机制。本研究通过为期5个月的室内试验,评估了镉(Cd)对土壤微生物n循环过程和相关功能基因丰度的影响,并对有无尿素添加进行了研究。在未加氮的土壤中,Cd逐渐刺激微生物群从最初的溶解有机氮(DON)到后来的顽固有机氮(顽固性有机氮)获取N, N分解代谢的加速与C分解代谢同步耦合,导致CO2/N2O通量和三磷酸腺苷(ATP)含量增加。被认为在氮分解代谢中效率低下的微生物丰度在初始刺激期后逐渐受到抑制。我们认为,增强的自能氮过程减少了作为金属胁迫下氮群落生存策略的自能活动的需要。在尿素处理下,Cd对土壤的硝化作用表现出初期的促进作用,随后对土壤的矿化作用表现出促进作用,并增加了土壤微生物的数量。在N-修正土壤中,Cd加速了N/C转化过程,但使N2O和CO2通量分别降低了19%和14%。这表明在富营养化条件下,镉同步改变微生物C/N代谢,从主导分解代谢过程转变为合成代谢过程。这些结果推断了微生物氮循环策略的营养基础调整,以增强其金属抗性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Dynamics of Soil Microbial N-Cycling Strategies in Response to Cadmium Stress

Dynamics of Soil Microbial N-Cycling Strategies in Response to Cadmium Stress

Globally increasing trace metal contamination of soils requires a better mechanistic understanding of metal-stress impacts on microbially mediated nutrient cycling. Herein, a 5-month laboratory experiment was employed to assess the effects of cadmium (Cd) on soil microbial N-cycling processes and associated functional gene abundance, with and without urea amendment. In non-N-amended soils, Cd progressively stimulated microbial populations for N acquisition from initial dissolved organic N (DON) to later recalcitrant organic N. The acceleration of N catabolism was synchronously coupled with C catabolism resulting in increased CO2/N2O fluxes and adenosine triphosphate (ATP) contents. The abundance of microbes deemed inefficient in N catabolism was gradually repressed after an initial stimulation period. We posit that enhanced exergonic N processes diminished the need for endergonic activities as a survival strategy for N communities experiencing metal stress. With urea amendment, Cd exhibited an initial stimulation effect on soil nitrification and a later a promotion effect on mineralization, along with an increase in the associated microbial populations. In N-amended soils, Cd accelerated N/C transformation processes, but decreased N2O and CO2 fluxes by 19 and 14%, respectively. This implies that under eutrophic conditions, Cd synchronously altered microbial C/N metabolism from a dominance of catabolic to anabolic processes. These results infer a nutrient-based adjustment of microbial N-cycling strategies to enhance their metal resistance.

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来源期刊
环境科学与技术
环境科学与技术 环境科学-工程:环境
CiteScore
17.50
自引率
9.60%
发文量
12359
审稿时长
2.8 months
期刊介绍: Environmental Science & Technology (ES&T) is a co-sponsored academic and technical magazine by the Hubei Provincial Environmental Protection Bureau and the Hubei Provincial Academy of Environmental Sciences. Environmental Science & Technology (ES&T) holds the status of Chinese core journals, scientific papers source journals of China, Chinese Science Citation Database source journals, and Chinese Academic Journal Comprehensive Evaluation Database source journals. This publication focuses on the academic field of environmental protection, featuring articles related to environmental protection and technical advancements.
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