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从受污染水资源中分离出的 Brevibacillus 生物质对 Pb(II)离子去除的生物吸附潜力的表征。

Characterization of biosorption potential of Brevibacillus biomass isolated from contaminated water resources for removal of Pb (II) ions.

机构信息

R V Labs, 2-14-117-55, 3rd lane extension, Syamala nagar, Guntur, Andhra Pradesh, India; Department of Biotechnology, Koneru Lakshmaiah Education Foundation (KLEF), Deemed to be University, Greenfields, Vaddeswaram, Guntur-522502, Andhra Pradesh, India E-mail:

Department of Biotechnology, Koneru Lakshmaiah Education Foundation (KLEF), Deemed to be University, Greenfields, Vaddeswaram, Guntur-522502, Andhra Pradesh, India E-mail:

出版信息

Water Sci Technol. 2022 Apr;85(8):2358-2374. doi: 10.2166/wst.2022.110.

Abstract

Various activities of different industries are found to be the main reason for water pollution with heavy metals. Use of microorganisms that are tolerant even of a high concentration of metal ions could be a valuable tool for remediation of contaminated water resources. In the present study, microorganisms that showed high resistance to lead ions were isolated and evaluated for biosorption efficiency for removal of lead ions from waste water. Biochemical identification and 16S rRNA gene sequence analysis indicated that the isolated strain was Brevibacillus. The conditions of pH, biomass concentration, temperature, time, agitation and Initial concentration of metal for biosorption of Pb (II) were optimized. Based on induction coupled plasma optical emission spectroscopy (ICP-OES) analysis, the biosorption efficiency of Brevibacillus at optimized conditions of initial metal concentration of 150 μg/mL, 1 g/L of biomass dose, pH 6.0, 40 °C, for 12 h at 80 rpm was 78.58% and the biosorption capacity (q) is 128.58 mg/g of the biosorbent. Of the three isotherm models investigated, the Freundlich isotherm model was identified as a good fit with high correlation coefficient, while kinetic data followed the pseudo first order model as best fit. Surface characterization by scanning electron microscopy (SEM) analysis revealed morphological changes with a bulged rod-shape cell having metal depositions and rough texture. The presence of lead within the cell was detected by transmission emission microscopy (TEM). The key functional groups that participate in biosorption were analyzed by Fourier transform infrared (FTIR) spectroscopy and were found to be carboxyl, hydroxyl, amino and phosphate groups. From the real-time study, it proves that the biomass of Brevibacillus can be used as a promising biosorbent for removal of metals including lead from waste water.

摘要

各种不同行业的活动被发现是造成重金属水污染的主要原因。使用能够耐受高浓度金属离子的微生物可以成为修复受污染水资源的有价值工具。在本研究中,分离出了对铅离子具有高抗性的微生物,并评估了其从废水中去除铅离子的生物吸附效率。生化鉴定和 16S rRNA 基因序列分析表明,分离出的菌株为短芽孢杆菌。优化了 pH、生物质浓度、温度、时间、搅拌和初始金属浓度等条件,用于吸附 Pb(II)。基于电感耦合等离子体光学发射光谱(ICP-OES)分析,在初始金属浓度为 150μg/mL、生物质剂量为 1g/L、pH6.0、40°C、80rpm 搅拌 12h 的优化条件下,短芽孢杆菌的生物吸附效率为 78.58%,生物吸附剂的生物吸附容量(q)为 128.58mg/g。在所研究的三种等温模型中,发现 Freundlich 等温模型拟合度较好,相关系数较高,而动力学数据则最符合准一级模型。扫描电子显微镜(SEM)分析的表面特征显示,细胞呈膨胀的杆状,有金属沉积和粗糙纹理。透射电子显微镜(TEM)检测到细胞内存在铅。通过傅里叶变换红外(FTIR)光谱分析,确定参与生物吸附的关键官能团为羧基、羟基、氨基和磷酸基。实时研究证明,短芽孢杆菌的生物质可以作为一种有前途的生物吸附剂,用于去除废水中的金属,包括铅。

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