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在生物电化学系统中鉴定和评估直链烷基苯磺酸钠(LAS)生物降解过程中的优势细菌种类及其性能。

The identification and performance assessment of dominant bacterial species during linear alkylbenzene sulfonate (LAS)-biodegradation in a bioelectrochemical system.

机构信息

Department of Chemical Engineering, Amirkabir University of Technology (Tehran Polytechnic), Tehran, Iran.

Department of Chemical and Petroleum Engineering, Sharif University of Technology, Tehran, Iran.

出版信息

Bioprocess Biosyst Eng. 2021 Dec;44(12):2579-2590. doi: 10.1007/s00449-021-02629-0. Epub 2021 Sep 7.

Abstract

The anionic surfactant linear alkylbenzene sulfonate (LAS) is a major chemical constituent of detergent formulation. Regarding the recalcitrant nature of sulfonoaromatic compounds, discharging these substances into wastewater collection systems is a real environmental issue. A study on LAS biodegradation based on bioelectrochemical treatment and in the form of developing a single-chamber microbial fuel cell with air cathode is reported in the present work. Pretreatment study showed LAS concentration of 60 ppm resulted in the highest anaerobic LAS removal of 57%; so, this concentration was chosen to run the MFC. After the sustained anodic biofilm was formed, LAS degradation rate during 4 days in MFC was roughly 76% higher than that in the serum bottle, which indicated the role of the bioelectrochemical process in improving anaerobic LAS removal. Additionally, through 16S rRNA gene sequencing, the dominant bacterial species in the biofilm was identified as Pseudomonas zhaodongensis NEAU-ST5-21(T) with about 98.9% phylogenetic similarity and then a pathway was proposed for LAS anaerobic biodegradation. The MFC characteristics were assessed by pH monitoring as well as scanning electron microscopy and current density evolution.

摘要

阴离子表面活性剂直链烷基苯磺酸盐(LAS)是洗涤剂配方的主要化学成分。鉴于亚砜芳香族化合物的难降解性质,将这些物质排放到废水收集系统是一个真正的环境问题。本工作报道了一种基于生物电化学处理的 LAS 生物降解研究,以及以开发带有空气阴极的单室微生物燃料电池的形式。预处理研究表明,60 ppm 的 LAS 浓度可实现最高的 57%厌氧 LAS 去除率;因此,选择该浓度来运行 MFC。在持续形成阳极生物膜后,MFC 中 LAS 的降解速率在 4 天内比血清瓶中的降解速率高出约 76%,这表明生物电化学过程在提高厌氧 LAS 去除率方面的作用。此外,通过 16S rRNA 基因测序,鉴定出生物膜中的优势细菌种为 Pseudomonas zhaodongensis NEAU-ST5-21(T),其系统发育相似性约为 98.9%,随后提出了 LAS 厌氧生物降解途径。通过 pH 监测以及扫描电子显微镜和电流密度演化评估了 MFC 的特性。

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