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微生物发电增强了十溴联苯醚(BDE-209)的降解。

Microbial electricity generation enhances decabromodiphenyl ether (BDE-209) degradation.

机构信息

Guangdong Provincial Key Laboratory of Microbial Culture Collection and Application, Guangdong Institute of Microbiology, Guangzhou, China.

出版信息

PLoS One. 2013 Aug 5;8(8):e70686. doi: 10.1371/journal.pone.0070686. Print 2013.

Abstract

Due to environmental persistence and biotoxicity of polybrominated diphenyl ethers (PBDEs), it is urgent to develop potential technologies to remediate PBDEs. Introducing electrodes for microbial electricity generation to stimulate the anaerobic degradation of organic pollutants is highly promising for bioremediation. However, it is still not clear whether the degradation of PBDEs could be promoted by this strategy. In this study, we hypothesized that the degradation of PBDEs (e.g., BDE-209) would be enhanced under microbial electricity generation condition. The functional compositions and structures of microbial communities in closed-circuit microbial fuel cell (c-MFC) and open-circuit microbial fuel cell (o-MFC) systems for BDE-209 degradation were detected by a comprehensive functional gene array, GeoChip 4.0, and linked with PBDE degradations. The results indicated that distinctly different microbial community structures were formed between c-MFCs and o-MFCs, and that lower concentrations of BDE-209 and the resulting lower brominated PBDE products were detected in c-MFCs after 70-day performance. The diversity and abundance of a variety of functional genes in c-MFCs were significantly higher than those in o-MFCs. Most genes involved in chlorinated solvent reductive dechlorination, hydroxylation, methoxylation and aromatic hydrocarbon degradation were highly enriched in c-MFCs and significantly positively correlated with the removal of PBDEs. Various other microbial functional genes for carbon, nitrogen, phosphorus and sulfur cycling, as well as energy transformation process, were also significantly increased in c-MFCs. Together, these results suggest that PBDE degradation could be enhanced by introducing the electrodes for microbial electricity generation and by specifically stimulating microbial functional genes.

摘要

由于多溴二苯醚(PBDEs)在环境中的持久性和生物毒性,开发潜在技术来修复 PBDEs 迫在眉睫。将微生物发电用的电极引入到刺激有机污染物的厌氧降解中,对于生物修复来说是极具前景的。然而,目前尚不清楚这种策略是否可以促进 PBDEs 的降解。在本研究中,我们假设在微生物发电条件下,PBDEs(如 BDE-209)的降解会得到增强。通过综合功能基因芯片 GeoChip 4.0 检测了闭路微生物燃料电池(c-MFC)和开式微生物燃料电池(o-MFC)系统中用于 BDE-209 降解的微生物群落的功能组成和结构,并将其与 PBDE 降解相关联。结果表明,c-MFC 和 o-MFC 之间形成了明显不同的微生物群落结构,在 70 天的性能后,c-MFC 中的 BDE-209 浓度较低,生成的溴代 PBDE 产物也较低。c-MFC 中的各种功能基因的多样性和丰度明显高于 o-MFC。与 PBDE 去除显著正相关的各种功能基因,包括氯化溶剂还原脱氯、羟化、甲氧基化和芳烃降解,在 c-MFC 中高度富集。各种其他微生物功能基因,如碳、氮、磷和硫循环以及能量转化过程,在 c-MFC 中也显著增加。总之,这些结果表明,通过引入微生物发电用的电极和特别刺激微生物功能基因,可以增强 PBDE 的降解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/74e1/3734261/d5095ed590ad/pone.0070686.g001.jpg

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