College of Environment, Zhejiang University of Technology, Hangzhou 310014, China.
Zhejiang Engineering Survey and Design Institute Group Co., Ltd., Ningbo 315012, China.
Sci Total Environ. 2024 Jun 1;927:172402. doi: 10.1016/j.scitotenv.2024.172402. Epub 2024 Apr 10.
Microbial fuel cells (MFCs) have significant potential for environmental remediation and energy recycling directly from refractory aromatic hydrocarbons. To boost the capacities of toluene removal and the electricity production in MFCs, this study constructed a polyaniline@carbon nanotube (PANI@CNT) bioanode with a three-dimensional framework structure. Compared with the control bioanode based on graphite sheet, the PANI@CNT bioanode increased the output voltage and toluene degradation kinetics by 2.27-fold and 1.40-fold to 0.399 V and 0.60 h, respectively. Metagenomic analysis revealed that the PANI@CNT bioanode promoted the selective enrichment of Pseudomonas, with the dual functions of degrading toluene and generating exogenous electrons. Additionally, compelling genomic evidence elucidating the relationship between functional genes and microorganisms was found. It was interesting that the genes derived from Pseudomonas related to extracellular electron transfer, tricarboxylic acid cycle, and toluene degradation were upregulated due to the existence of PANI@CNT. This study provided biomolecular insights into key genes and related microorganisms that effectively facilitated the organic pollutant degradation and energy recovery in MFCs, offering a novel alternative for high-performance bioanode.
微生物燃料电池 (MFC) 具有直接从难降解芳烃中进行环境修复和能源回收的巨大潜力。为了提高 MFC 中甲苯去除和电力生产的能力,本研究构建了具有三维框架结构的聚苯胺@碳纳米管 (PANI@CNT) 生物阳极。与基于石墨片的对照生物阳极相比,PANI@CNT 生物阳极将输出电压和甲苯降解动力学分别提高了 2.27 倍和 1.40 倍,达到 0.399 V 和 0.60 h。宏基因组分析表明,PANI@CNT 生物阳极促进了假单胞菌的选择性富集,具有降解甲苯和产生外源性电子的双重功能。此外,还发现了有说服力的基因组证据,阐明了功能基因与微生物之间的关系。有趣的是,由于 PANI@CNT 的存在,与细胞外电子转移、三羧酸循环和甲苯降解相关的源自假单胞菌的基因被上调。本研究为有效促进 MFC 中有机污染物降解和能量回收的关键基因和相关微生物提供了生物分子见解,为高性能生物阳极提供了一种新的选择。