Effects of nitrate reduction on the biotransformation of 1H-1,2,4-triazole: Mechanism and community evolution

IF 11.3 1区 环境科学与生态学 Q1 ENGINEERING, ENVIRONMENTAL
Qiang Chi , Jing Wang , Yong Tu , Jing Xu , Ling Pan , Jinyou Shen
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引用次数: 0

Abstract

Due to the refractory of 1 H-1,2,4-triazole (TZ), conventional anaerobic biological treatment technology is usually restricted by low removal efficiency and poor system stability. In this study, TZ biodegradation and nitrate reduction was coupled to improve the removal efficiency of TZ from polluted wastewater. Batch assay was performed with pure culture strain Raoultella sp. NJUST42, which was reported to have the capability to degrade TZ in our previous study. Based on batch assay result, complete removal of TZ could be achieved in the presence of nitrate, whereas only 50% of TZ could be removed in the control system. Long-term stability experiment indicated that the relative abundance of microorganisms (Bacteroidetes_vadinHA17, Georgenia, Anaerolinea, etc) was obviously enhanced under nitrate reduction condition. During long-term period, major intermediates for TZ biodegradation such as [1,2,4]Triazolidine-3,5-diol, hydrazine dibasic carboxylic acid and carbamic acid were detected. A novel TZ biotransformation approach via hydration, TZ-ring cleavage, deamination and oxidation was speculated. PICRUSt1 and KEGG pathway analyses indicated that hydration (dch), oxidation (adhD, oah, pucG, fdhA) of TZ and nitrate reduction (Nar, napA, nrfA, nirBK, norB, nosZ) were significantly enhanced in the presence of nitrate. Moreover, the significant enrichment of TCA cycle (gab, sdh, fum, etc.) indicated that carbon and energy metabolism were facilitated with the addition of nitrate, thus improved TZ catabolism. The proposed mechanism demonstrated that TZ biodegradation coupled with nitrate reduction would be a promising approach for efficient treatment of wastewater contaminated by TZ.

Abstract Image

硝酸盐还原对 1H-1,2,4-三唑生物转化的影响:机制与群落演化
由于 1 H-1,2,4-三唑(TZ)具有难降解性,传统的厌氧生物处理技术通常受到去除效率低和系统稳定性差的限制。本研究将 TZ 生物降解与硝酸盐还原相结合,以提高污染废水中 TZ 的去除效率。本研究使用纯培养菌株 Raoultella sp. NJUST42 进行了批次试验,该菌株在之前的研究中被报道具有降解 TZ 的能力。批量试验结果表明,在硝酸盐存在的情况下,TZ 可以被完全去除,而在对照系统中,TZ 的去除率仅为 50%。长期稳定性实验表明,在硝酸盐还原条件下,微生物(Bacteroidetes_vadinHA17、Georgenia、Anaerolinea 等)的相对丰度明显提高。在长期的生物降解过程中,检测到了 TZ 生物降解的主要中间产物,如 [1,2,4]三唑烷-3,5-二醇、肼二元羧酸和氨基甲酸。推测这是一种通过水合、TZ 环裂解、脱氨和氧化实现 TZ 生物转化的新方法。PICRUSt1 和 KEGG 通路分析表明,在硝酸盐存在的情况下,TZ 的水合作用(dch)、氧化作用(adhD、ohah、pucG、fdhA)和硝酸盐还原作用(Nar、napA、nrfA、nirBK、norB、nosZ)显著增强。此外,TCA 循环(gab、sdh、fum 等)明显增强,表明硝酸盐的加入促进了碳和能量代谢,从而改善了 TZ 的分解代谢。所提出的机理表明,TZ 生物降解与硝酸盐还原相结合将是有效处理受 TZ 污染的废水的一种可行方法。
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来源期刊
Journal of Hazardous Materials
Journal of Hazardous Materials 工程技术-工程:环境
CiteScore
25.40
自引率
5.90%
发文量
3059
审稿时长
58 days
期刊介绍: The Journal of Hazardous Materials serves as a global platform for promoting cutting-edge research in the field of Environmental Science and Engineering. Our publication features a wide range of articles, including full-length research papers, review articles, and perspectives, with the aim of enhancing our understanding of the dangers and risks associated with various materials concerning public health and the environment. It is important to note that the term "environmental contaminants" refers specifically to substances that pose hazardous effects through contamination, while excluding those that do not have such impacts on the environment or human health. Moreover, we emphasize the distinction between wastes and hazardous materials in order to provide further clarity on the scope of the journal. We have a keen interest in exploring specific compounds and microbial agents that have adverse effects on the environment.
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