The catabolic pathways of in situ rhizosphere PAH degraders and the main factors driving PAH rhizoremediation in oil-contaminated soil.

生物修复 根际 土壤污染 环境化学 植物修复 生物 环境修复 生物降解 土壤水分 土壤微生物学 污染 微生物种群生物学 微生物 环境科学
作者
Jibing Li,Chunling Luo,Dayi Zhang,Xuan Zhao,Yeliang Dai,Xixi Cai,Gan Zhang
出处
期刊:Environmental Microbiology [Wiley]
卷期号:23 (11): 7042-7055
标识
DOI:10.1111/1462-2920.15790
摘要

Rhizoremediation is a potential technique for PAH remediation; however, the catabolic pathways of in situ rhizosphere PAH degraders and the main factors driving PAH rhizoremediation remain unclear. To address these issues, stable-isotope-probing coupled with metagenomics and molecular ecological network analyses were firstly used to investigate the phenanthrene rhizoremediation by three different prairie grasses in this study. All rhizospheres exhibited a significant increase in phenanthrene removal and markedly modified the diversity of phenanthrene degraders by increasing their populations and interactions with other microbes. Of all the active phenanthrene degraders, Marinobacter and Enterobacteriaceae dominated in the bare and switchgrass rhizosphere, respectively; Achromobacter was markedly enriched in ryegrass and tall fescue rhizospheres. Metagenomes of 13 C-DNA illustrated several complete pathways of phenanthrene degradation for each rhizosphere, which clearly explained their unique rhizoremediation mechanisms. Additionally, propanoate and inositol phosphate of carbohydrates were identified as the dominant factors that drove PAH rhizoremediation by strengthening the ecological networks of soil microbial communities. This was verified by the results of rhizospheric and non-rhizospheric treatments supplemented with these two substances, further confirming their key roles in PAH removal and in situ PAH rhizoremediation. Our study offers novel insights into the mechanisms of in situ rhizoremediation at PAH-contaminated sites. This article is protected by copyright. All rights reserved.
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