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一种评估土壤重金属污染的新型细胞外酶化学计量方法:来自微生物代谢限制的证据。

A novel extracellular enzyme stoichiometry method to evaluate soil heavy metal contamination: Evidence derived from microbial metabolic limitation.

机构信息

State Key Laboratory of Soil Erosion and Dryland Farming on the Loess Plateau, Institute of Soil and Water Conservation CAS and MWR, Yangling 712100, China; University of Chinese Academy of Sciences, Beijing 100049, China.

State Key Laboratory of Soil Erosion and Dryland Farming on the Loess Plateau, Institute of Soil and Water Conservation CAS and MWR, Yangling 712100, China.

出版信息

Sci Total Environ. 2020 Oct 10;738:139709. doi: 10.1016/j.scitotenv.2020.139709. Epub 2020 May 26.

Abstract

Heavy metal contaminates have become a significant threat to soil ecosystems due to their chronicity and universality in soil. Soil microbial metabolism plays a vital role in biogeochemical cycles and soil functions. However, the response of microbial metabolism to heavy metal contamination in soil remains elusive despite potentially offering important insight into the health and ecological consequences of soil ecosystems under such contamination. This study used extracellular enzyme stoichiometry models to identify the response of microbial metabolism to various heavy metal contaminants, while also revealing potential implications of heavy metal contaminates in soil ecosystems. Results showed that microbial metabolism was restricted by soil carbon (C) and phosphorus (P) within a heavy metal polluted area in Northwest China. Heavy metal stress significantly increased microbial C limitation while decreasing microbial P limitation. However, microbial C and P limitations both responded consistently to different heavy metals (i.e., Cd, Pb, Zn, and Cu). Heavy metals had the greatest effect on microbial C limitation (i.e., 0.720 of the total effects) compared to other soil properties, and soil with the lowest heavy metal concentration exhibited the lowest microbial C limitation, and vice versa. These results indicated that microbial metabolic limitation can robustly and sensitively reflect the degree of heavy metals pollution in soil. Additionally, increased microbial C limitation caused by heavy metal contaminants could potentially escalate C release by promoting soil C decomposition as well as increasing investments in enzyme production and the maintenance of metabolic processes. Consequently, potential C loss induced by heavy metal pollution on soil ecosystems may be extensive and significant. Generally, our results suggest the usefulness of extracellular enzyme stoichiometry as a new method from which to evaluate heavy metal soil pollution, while microbial metabolic limitation could potentially be a promising indicator.

摘要

重金属污染物由于其在土壤中的慢性和普遍性,已成为土壤生态系统的重大威胁。土壤微生物代谢在生物地球化学循环和土壤功能中起着至关重要的作用。然而,尽管微生物代谢对土壤中重金属污染的响应可能为了解土壤生态系统在这种污染下的健康和生态后果提供重要的见解,但它仍然难以捉摸。本研究使用胞外酶化学计量模型来确定微生物代谢对各种重金属污染物的响应,同时揭示土壤生态系统中重金属污染物的潜在影响。结果表明,微生物代谢受到中国西北地区重金属污染地区土壤碳(C)和磷(P)的限制。重金属胁迫显著增加了微生物 C 的限制,同时降低了微生物 P 的限制。然而,微生物 C 和 P 的限制都对不同的重金属(即 Cd、Pb、Zn 和 Cu)做出了一致的响应。与其他土壤特性相比,重金属对微生物 C 限制的影响最大(即总效应的 0.720),而重金属浓度最低的土壤表现出最低的微生物 C 限制,反之亦然。这些结果表明,微生物代谢限制可以稳健而敏感地反映土壤重金属污染的程度。此外,重金属污染物引起的微生物 C 限制的增加可能会通过促进土壤 C 分解以及增加酶生产和代谢过程的维持投资来加剧 C 的释放。因此,重金属污染对土壤生态系统可能引起的潜在 C 损失可能广泛而显著。总的来说,我们的结果表明,胞外酶化学计量作为一种评估土壤重金属污染的新方法是有用的,而微生物代谢限制可能是一个很有前途的指标。

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