Department of Environmental Engineering, Technical University of Denmark, Lyngby DK-2800, Denmark.
State Key Laboratory of Organic Geochemistry, Guangzhou Institute of Geochemistry, Chinese Academy of Sciences, Guangzhou 510640, China.
Water Res. 2022 Mar 1;211:118046. doi: 10.1016/j.watres.2022.118046. Epub 2022 Jan 7.
Exoelectrogenic biofilm and the associated microbial electrochemical processes have recently been intensively studied for water treatment, but their response to and interaction with polyethylene (PE) microplastics which are widespread in various aquatic environments has never been reported. Here, we investigated how and to what extent PE microplastics would affect the electrochemistry and microbiology of exoelectrogenic biofilm in both microbial fuel cells (MFCs) and microbial electrolysis cells (MECs). When the PE microplastics concentration was increased from 0 to 75 mg/L in the MECs, an apparent decline in the maximum current density (from 1.99 to 0.74 A/m) and abundance of electroactive bacteria (EAB) in the exoelectrogenic biofilm was noticed. While in the MFCs, the current output was not significantly influenced and the abundance of EAB lightly increased at 25 mg/L microplastics. In addition, PE microplastics restrained the viability of the exoelectrogenic biofilms in both systems, leading to a higher system electrode resistance. Moreover, the microbial community richness and the microplastics-related operational taxonomic units decreased with PE microplastics. Furthermore, the electron transfer-related genes (e.g., pilA and mtrC) and cytochrome c concentration decreased after adding microplastics. This study provides the first glimpse into the influence of PE microplastics on the exoelectrogenic biofilm with the potential mechanisms revealed at the gene level, laying a methodological foundation for the future development of efficient water treatment technologies.
近年来,人们对产电生物膜及其相关的微生物电化学过程进行了深入研究,以期用于水处理,但它们对广泛存在于各种水生环境中的聚乙烯(PE)微塑料的响应和相互作用却从未被报道过。在这里,我们研究了 PE 微塑料将以何种方式、在何种程度上影响微生物燃料电池(MFCs)和微生物电解池(MECs)中产电生物膜的电化学和微生物学。当 MECs 中 PE 微塑料浓度从 0 增加到 75mg/L 时,产电生物膜中最大电流密度(从 1.99 减少到 0.74A/m)和电活性细菌(EAB)的丰度明显下降。而在 MFCs 中,电流输出没有受到明显影响,当微塑料浓度为 25mg/L 时,EAB 的丰度略有增加。此外,PE 微塑料抑制了两个系统中产电生物膜的活性,导致系统电极电阻升高。此外,PE 微塑料还降低了微生物群落的丰富度和与微塑料相关的操作分类单元数量。进一步的,电子传递相关基因(如 pilA 和 mtrC)和细胞色素 c 浓度在添加微塑料后减少。本研究首次揭示了 PE 微塑料对产电生物膜的影响及其在基因水平上的潜在机制,为未来开发高效水处理技术奠定了方法学基础。