Zhang Yunfeng, Pan Yubing, Zhao Cheng, Lv Minghui, Jiang Qing, Wang Feng, Li Yanan, Gao Shuai, Shi Ke
Shandong Provincial Geo-mineral Engineering Exploration Institute, Shandong Provincial Bureau of Geology & Mineral Resources, Jinan, People's Republic of China.
Shandong Engineering Research Center for Environmental Protection and Remediation on Groundwater, Jinan, People's Republic of China.
Environ Technol. 2025 Aug;46(19):3847-3858. doi: 10.1080/09593330.2025.2478183. Epub 2025 Mar 19.
Microbial electrolysis cells (MECs) are promising for treating acidic mine drainage (AMD) containing high concentrations of sulfates and heavy metals. However, the performance of MEC cathodic biofilms is influenced not only by high heavy metals concentrations but also by hydrodynamic mixing conditions. Yet, there is a lack of precise assessment on the impact of hydrodynamic mixing conditions on MEC treating sulfate-laden wastewater under high heavy metal stress, and the defense mechanisms of MECs remain unclear. This study investigated the effects of different hydrodynamic conditions (EG, flow condition; CG, stationary condition) on the performance of MECs treating sulfate wastewater under high heavy metal stress, delving into microbial activity, community composition, electrochemical performance, and microbial defense capabilities against heavy metals. The results indicated that under heavy metal stress, microbial cells underwent severe deformation and death, with the assimilatory sulfate reduction pathway severely impaired, leading to a decline in MEC performance, and the reduction rate of CG group was finally reduced to 14.47%. In contrast, under flow conditions, the EG group exhibited increased extracellular polymeric substances (EPS) composition, enhanced biofilm community diversity, and elevated levels of copper resistance genes, significantly mitigating the inhibitory effects of Cu on microorganisms, ultimately maintaining a performance of 47.18%. Ultimately, Cu in the system was removed through bioprecipitation and biosorption, forming CuS and Cu(OH). This work provides critical insights for scaling up MEC technology to address co-contamination challenges in acid mine drainage remediation, particularly for environments with hydrodynamic mixing conditions and elevated heavy metal concentrations.
微生物电解池(MECs)在处理含有高浓度硫酸盐和重金属的酸性矿山排水(AMD)方面具有广阔前景。然而,MEC阴极生物膜的性能不仅受到高浓度重金属的影响,还受到流体动力混合条件的影响。然而,目前缺乏对流体动力混合条件对MEC在高重金属胁迫下处理含硫酸盐废水的影响的精确评估,且MECs的防御机制仍不清楚。本研究调查了不同流体动力条件(EG,流动条件;CG,静止条件)对MECs在高重金属胁迫下处理硫酸盐废水性能的影响,深入研究了微生物活性、群落组成、电化学性能以及微生物对重金属的防御能力。结果表明,在重金属胁迫下,微生物细胞发生严重变形和死亡,同化硫酸盐还原途径严重受损,导致MEC性能下降,CG组的还原率最终降至14.47%。相比之下,在流动条件下,EG组表现出细胞外聚合物(EPS)组成增加、生物膜群落多样性增强以及铜抗性基因水平升高,显著减轻了Cu对微生物的抑制作用,最终保持了47.18%的性能。最终,系统中的Cu通过生物沉淀和生物吸附被去除,形成了CuS和Cu(OH)。这项工作为扩大MEC技术规模以应对酸性矿山排水修复中的共污染挑战提供了关键见解,特别是对于具有流体动力混合条件和高重金属浓度的环境。