[Rhizosphere bacterial metabolism of plants growing in landfill cover soil regulates biodegradation of chlorobenzene].

Q4 Biochemistry, Genetics and Molecular Biology
Shangjie Chen, Li Dong, Juan Xiong, Baozhong Mou, Zhilin Xing, Tiantao Zhao
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引用次数: 0

Abstract

The regulation of rhizosphere bacterial community structure and metabolism by plants in municipal solid waste landfills is a key to enhancing the biodegradation of chlorobenzene (CB). In this study, we employed biodiversity and metabolomics methods to systematically analyze the mechanisms of different plant species in regulating the rhizosphere bacterial community structure and metabolic features and then improved the methane (CH4) oxidation and CB degradation capacity. The results showed that the rhizosphere soil of Rumex acetosa exhibited the highest CH4 oxidation and CB degradation capacity of 0.08 g/(kg·h) and 1.72×10-6 g/(L·h), respectively, followed by the rhizosphere soil of Amaranthus spinosus L., with the rhizosphere soil of Broussonetia papyrifera showing the weakest activity. Rumex acetosa promoted the colonization of Methylocaldum in the rhizosphere, and the small-molecule organic amine, such as triethylamine and N-methyl-aniline, secreted from the roots of this plant enhanced the tricarboxylic acid cycle and nicotinamide metabolism, thereby increasing microbial activity and improving CH4 and CB degradation efficiency. Conversely, cinnamic acid and its derivatives secreted by Broussonetia papyrifera acted as autotoxins, inhibiting microbial activity and exacerbating the negative effects of salt stress on key microbes such as methanotrophs. This study probed into the mechanisms of typical plants growing in landfill cover soil in regulating bacterial ecological functions, offering theoretical support and practical guidance for the plant-microbe joint control of landfill gas pollution.

[垃圾填埋场覆盖土壤中植物根际细菌代谢调节氯苯的生物降解]。
城市生活垃圾填埋场植物对根际细菌群落结构和代谢的调控是促进氯苯生物降解的关键。本研究采用生物多样性和代谢组学方法,系统分析了不同植物物种调节根际细菌群落结构和代谢特征的机制,进而提高了甲烷(CH4)氧化和CB降解能力。结果表明,牛蒡根际土壤CH4氧化和降解CB的能力最高,分别为0.08 g/(kg·h)和1.72×10-6 g/(L·h),其次是苋属根际土壤,活性最弱的是纸草根际土壤。Rumex acetosa促进了Methylocaldum在根际的定植,根部分泌的三乙胺和n -甲基苯胺等小分子有机胺促进了三羧酸循环和烟酰胺代谢,从而增加了微生物活性,提高了CH4和CB的降解效率。相反,纸莎草菌分泌的肉桂酸及其衍生物作为自身毒素,抑制微生物活性,加剧盐胁迫对甲烷氧化菌等关键微生物的负面影响。本研究探讨了垃圾填埋场覆盖土壤中典型植物调控细菌生态功能的机制,为植物-微生物联合治理垃圾填埋场气体污染提供理论支持和实践指导。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Sheng wu gong cheng xue bao = Chinese journal of biotechnology
Sheng wu gong cheng xue bao = Chinese journal of biotechnology Biochemistry, Genetics and Molecular Biology-Biotechnology
CiteScore
1.50
自引率
0.00%
发文量
298
期刊介绍: Chinese Journal of Biotechnology (Chinese edition) , sponsored by the Institute of Microbiology, Chinese Academy of Sciences and the Chinese Society for Microbiology, is a peer-reviewed international journal. The journal is cited by many scientific databases , such as Chemical Abstract (CA), Biology Abstract (BA), MEDLINE, Russian Digest , Chinese Scientific Citation Index (CSCI), Chinese Journal Citation Report (CJCR), and Chinese Academic Journal (CD version). The Journal publishes new discoveries, techniques and developments in genetic engineering, cell engineering, enzyme engineering, biochemical engineering, tissue engineering, bioinformatics, biochips and other fields of biotechnology.
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