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生物炭改良土壤中多环芳烃高效根际降解机制的研究进展:从微生物群落到土壤代谢组学。

Insights into the mechanisms underlying efficient Rhizodegradation of PAHs in biochar-amended soil: From microbial communities to soil metabolomics.

机构信息

CAS Key Laboratory of Soil Environment and Pollution Remediation, Institute of Soil Science, Nanjing 210008, China; University of the Chinese Academy of Sciences, Beijing 100049, China.

CAS Key Laboratory of Soil Environment and Pollution Remediation, Institute of Soil Science, Nanjing 210008, China; University of the Chinese Academy of Sciences, Beijing 100049, China.

出版信息

Environ Int. 2020 Nov;144:105995. doi: 10.1016/j.envint.2020.105995. Epub 2020 Aug 3.

Abstract

The combined effects of biochar amendment and the rhizosphere on the soil metabolic microbiome during the remediation of polycyclic aromatic hydrocarbon (PAH)-contaminated soil remain unknown. In this study, we attempted to characterize a PAH degradation network by coupling the direct PAH degradation with soil carbon cycling. From microbial community structure and functions to metabolic pathways, we revealed the modulation strategies by which biochar and the rhizosphere benefited PAH degradation in soil. Firstly, some PAH degraders were enriched by biochar and the rhizosphere, and their combination promoted the cooperation among these PAH degraders. Simultaneously, under the combined effects of biochar and the rhizosphere, the functional genes participating in upstream PAH degradation were greatly upregulated. Secondly, there were strong co-occurrences between soil microbial community members and metabolites, in particular, some PAH degraders and the metabolites, such as PAH degradation products or common carbon resources, were highlighted in the networks. It shows that the overall downstream carbon metabolism of PAH degradation was also greatly upregulated by the combined effects of biochar and plant roots, showing good survival of the soil microbiome and contributing to PAH biodegradation. Taken together, both soil carbon metabolism and direct contaminant biodegradation are likely to be modulated by the combined effects of biochar and plant roots, jointly benefitting to PAH degradation by soil microbiome. Our study is the first to link PAH degradation with native carbon metabolism by coupling sequencing and soil metabolomics technology, providing new insights into a systematic understanding of PAH degradation by indigenous soil microbiome and their networks.

摘要

生物炭添加和根际对多环芳烃(PAH)污染土壤修复过程中土壤代谢微生物组的联合影响尚不清楚。本研究试图通过将直接 PAH 降解与土壤碳循环相结合来表征 PAH 降解网络。从微生物群落结构和功能到代谢途径,我们揭示了生物炭和根际促进土壤中 PAH 降解的调节策略。首先,生物炭和根际富集了一些 PAH 降解菌,它们的组合促进了这些 PAH 降解菌之间的合作。同时,在生物炭和根际的共同作用下,参与上游 PAH 降解的功能基因被大大上调。其次,土壤微生物群落成员和代谢物之间存在强烈的共现关系,特别是一些 PAH 降解菌和代谢物,如 PAH 降解产物或常见的碳源,在网络中被突出显示。这表明 PAH 降解的整体下游碳代谢也被生物炭和植物根系的共同作用大大上调,显示出土壤微生物组的良好生存能力,并有助于 PAH 生物降解。总之,土壤碳代谢和直接污染物生物降解都可能受到生物炭和植物根系的共同作用的调节,共同有利于土壤微生物组对 PAH 的降解。本研究首次通过将测序和土壤代谢组学技术相结合,将 PAH 降解与本地碳代谢联系起来,为系统了解土著土壤微生物组及其网络对 PAH 的降解提供了新的见解。

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