Electro-mediated cathodic oxygen drives respiration chain electron transfer of electroactive bacteria to enhance refractory organic biological oxidation

IF 11.4 1区 环境科学与生态学 Q1 ENGINEERING, ENVIRONMENTAL Water Research Pub Date : 2024-10-05 DOI:10.1016/j.watres.2024.122585
Guang Yang, Yudong Luo, Yanhong Bian, Xi Chen, Lu Chen, Xia Huang
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Abstract

In electro-mediated biological system (EMBS), biological anode and cathode components were incorporated into an anaerobic bioreactor, providing a small amount of oxygen to the cathode as an electron acceptor. Oxygen diffusion also impacts the anode's anaerobic ecological environment. This study unraveled how oxygen influences the metabolism and electron transport chain during the biological oxidation of refractory organics. Under the influence of electromotive force, the straight-chain model pollutant N,N-dimethylformamide (DMF) showed rapid degradation and better ammonification, with maximum rates reaching 0.53 h-1 and 26.6%, respectively. Elevated electromotive force promoted the enrichment of functional electroactive bacteria on the anode and enhanced the availability of electron storage sites, thereby facilitating electron transfer at the anode-biofilm interface. Conversely, the anodic micro-aerobic environment disrupted the anaerobic microbial community structure, and the competitive interactions among fermentative bacteria and electroactive bacteria inhibited DMF degradation. Metagenomic analysis confirmed that cathodic oxygen up-regulated the pyruvate metabolism and the tricarboxylic acid (TCA) cycle to generate NADH and synthesize ATP. The electromotive force induced by cathodic oxygen accelerated the electron transfer in respiratory chains of electroactive bacteria, driving the oxidation of NADH and enhancing the degradation of organics. This study improves our understanding of the regulatory mechanisms governing metabolic pathways under the influence of cathodic oxygen. It offers potential for developing more efficient EMBS in industrial wastewater pretreatment, ensuring that oxygen is prevented from diffusing to the anode during micro-aeration at the cathode.

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电介导的阴极氧驱动电活性细菌的呼吸链电子传递,增强难处理有机物的生物氧化作用
在电介导生物系统(EMBS)中,生物阳极和阴极组件被纳入厌氧生物反应器,为阴极提供少量氧气作为电子受体。氧气扩散也会影响阳极的厌氧生态环境。这项研究揭示了氧气如何影响难熔有机物生物氧化过程中的新陈代谢和电子传递链。在电动力的影响下,直链模式污染物 N,N-二甲基甲酰胺(DMF)表现出快速降解和较好的氨化,最大降解率分别达到 0.53 h-1 和 26.6%。高电势促进了阳极上功能性电活性细菌的富集,提高了电子储存位点的可用性,从而促进了阳极-生物膜界面的电子传递。相反,阳极微好氧环境破坏了厌氧微生物群落结构,发酵菌和电活性菌之间的竞争性相互作用抑制了 DMF 降解。元基因组分析证实,阴极氧能上调丙酮酸代谢和三羧酸(TCA)循环,从而产生 NADH 并合成 ATP。阴极氧诱导的电动势加速了电活性细菌呼吸链中的电子传递,推动了 NADH 的氧化,促进了有机物的降解。这项研究加深了我们对阴极氧影响下代谢途径调控机制的理解。它为在工业废水预处理中开发更高效的 EMBS 提供了可能性,确保在阴极微曝气过程中氧气不会扩散到阳极。
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来源期刊
Water Research
Water Research 环境科学-工程:环境
CiteScore
20.80
自引率
9.40%
发文量
1307
审稿时长
38 days
期刊介绍: Water Research, along with its open access companion journal Water Research X, serves as a platform for publishing original research papers covering various aspects of the science and technology related to the anthropogenic water cycle, water quality, and its management worldwide. The audience targeted by the journal comprises biologists, chemical engineers, chemists, civil engineers, environmental engineers, limnologists, and microbiologists. The scope of the journal include: •Treatment processes for water and wastewaters (municipal, agricultural, industrial, and on-site treatment), including resource recovery and residuals management; •Urban hydrology including sewer systems, stormwater management, and green infrastructure; •Drinking water treatment and distribution; •Potable and non-potable water reuse; •Sanitation, public health, and risk assessment; •Anaerobic digestion, solid and hazardous waste management, including source characterization and the effects and control of leachates and gaseous emissions; •Contaminants (chemical, microbial, anthropogenic particles such as nanoparticles or microplastics) and related water quality sensing, monitoring, fate, and assessment; •Anthropogenic impacts on inland, tidal, coastal and urban waters, focusing on surface and ground waters, and point and non-point sources of pollution; •Environmental restoration, linked to surface water, groundwater and groundwater remediation; •Analysis of the interfaces between sediments and water, and between water and atmosphere, focusing specifically on anthropogenic impacts; •Mathematical modelling, systems analysis, machine learning, and beneficial use of big data related to the anthropogenic water cycle; •Socio-economic, policy, and regulations studies.
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