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采用电化学法将解淀粉芽孢杆菌 WJDB-1 固定在海藻酸-壳聚糖-海藻酸(ACA)微胶囊中对苯酚进行生物降解的研究。

Study of phenol biodegradation using Bacillus amyloliquefaciens strain WJDB-1 immobilized in alginate-chitosan-alginate (ACA) microcapsules by electrochemical method.

机构信息

Department of Chemistry, Lanzhou University, Lanzhou, 730000, People's Republic of China.

出版信息

Biodegradation. 2012 Apr;23(2):209-19. doi: 10.1007/s10532-011-9500-2. Epub 2011 Aug 2.

Abstract

An aerobic microorganism with an ability to utilize phenol as sole carbon and energy source was isolated from phenol-contaminated wastewater samples. The isolate was identified as Bacillus amyloliquefaciens strain WJDB-1 based on morphological, physiological, and biochemical characteristics, and 16S rDNA sequence analysis. Strain WJDB-1 immobilized in alginate-chitosan-alginate (ACA) microcapsules could degrade 200 mg/l phenol completely within 36 h. The concentration of phenol was determined using differential pulse voltammetry (DPV) at glassy carbon electrode (GCE) with a linear relationship between peak current and phenol concentration ranging from 2.0 to 20.0 mg/l. Cells immobilized in ACA microcapsules were found to be superior to the free suspended ones in terms of improving the tolerance to the environmental loadings. The optimal conditions to prepare microcapsules for achieving higher phenol degradation rate were investigated by changing the concentrations of sodium alginate, calcium chloride, and chitosan. Furthermore, the efficiency of phenol degradation was optimized by adjusting various processing parameters, such as the number of microcapsules, pH value, temperature, and the initial concentration of phenol. This microorganism has the potential for the efficient treatment of organic pollutants in wastewater.

摘要

从含酚废水样品中分离到一种能够以苯酚为唯一碳源和能源的好氧微生物。根据形态学、生理学和生物化学特征以及 16S rDNA 序列分析,该分离物被鉴定为解淀粉芽孢杆菌 WJDB-1 菌株。用海藻酸钠-壳聚糖-海藻酸钠(ACA)微胶囊固定的 WJDB-1 菌株能够在 36 小时内完全降解 200mg/l 的苯酚。使用玻碳电极(GCE)上的差分脉冲伏安法(DPV)测定苯酚浓度,峰电流与苯酚浓度在 2.0 至 20.0mg/l 范围内呈线性关系。与游离悬浮细胞相比,固定在 ACA 微胶囊中的细胞在提高对环境负荷的耐受性方面表现出优越性。通过改变海藻酸钠、氯化钙和壳聚糖的浓度来研究制备微胶囊以获得更高苯酚降解率的最佳条件。此外,通过调整微胶囊数量、pH 值、温度和苯酚初始浓度等各种处理参数来优化苯酚降解效率。这种微生物具有高效处理废水中有机污染物的潜力。

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