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Cd-Resistant Strains of B. cereus S5 with Endurance Capacity and Their Capacities for Cadmium Removal from Cadmium-Polluted Water

机译:具有持久能力的蜡状芽孢杆菌S5耐镉菌株及其去除镉污染水中镉的能力

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摘要

The goal of this study was to identify Cd-resistant bacterial strains with endurance capacity and to evaluate their ability to remove cadmium ions from cadmium-polluted water. The Bacillus cereusS5 strain identified in this study had the closest genetic relationship with B. cereus sp. Cp1 and performed well in the removal of Cd2+ions from solution. The results showed that both the live and dead biomasses of the Cd2+-tolerant B. cereus S5 strain could absorb Cd2+ ions in solution but that the live biomass of the B. cereus S5 strain outperformed the dead biomass at lower Cd2+concentrations. An analysis of the cadmium tolerance genes of B. cereus S5 identified ATPase genes that were associated with cadmium tolerance and involved in the ATP pumping mechanism. The FTIR spectra revealed the presence of amino, carboxyl and hydroxyl groups on the pristine biomass and indicated that the cadmium ion removal ability was related to the structure of the strain. The maximum absorption capacity of the B. cereus S5 strain in viable spore biomass was 70.16 mg/g (dry weight) based on a pseudo-second-order kinetic model fit to the experimental data. The Langmuir and Langmuir-Freundlich isotherm adsorption models fit the cadmium ion adsorption data well, and the kinetic curves indicated that the adsorption rate was second-order. For Cd2+ concentrations (mg/L) of 1–109 mg/L, good removal efficiency (>80%) was achieved using approximately 3.48–10.3 g/L of active spore biomass of the B. cereus S5 strain. A cadmium-tolerant bacteria-activated carbon-immobilized column could be used for a longer duration and exhibited greater treatment efficacy than the control column in the treatment of cadmium-polluted water. In addition, a toxicity assessment using mice demonstrated that the biomass of the B. cereus S5 strain and its fermentation products were non-toxic. Thus, the isolated B. cereus S5 strain can be considered an alternative biological adsorbent for use in emergency responses to severe cadmium pollution and in the routine treatment of trace cadmium pollution.
机译:这项研究的目的是确定具有耐久能力的耐Cd细菌菌株,并评估其从镉污染水中去除镉离子的能力。在这项研究中鉴定的蜡状芽孢杆菌S5菌株与蜡状芽孢杆菌有最密切的遗传关系。 Cp1在从溶液中去除Cd 2 + 离子方面表现良好。结果表明,耐Cd 2 + 的蜡状芽孢杆菌S5菌株的活体和死生物量均可吸收溶液中的Cd 2 + 离子,而Cd 2 + 在较低的Cd 2 + 浓度下,蜡状芽孢杆菌S5菌株的表现优于死生物质。对蜡状芽孢杆菌S5的镉耐受性基因的分析鉴定了与镉耐受性相关并参与ATP泵送机制的ATP酶基因。 FTIR光谱揭示原始生物质上存在氨基,羧基和羟基,并且表明镉离子去除能力与菌株的结构有关。基于适合于实验数据的拟二级动力学模型,蜡状芽孢杆菌S5菌株在活孢子生物量中的最大吸收能力为70.16 mg / g(干重)。 Langmuir和Langmuir-Freundlich等温吸附模型很好地拟合了镉离子的吸附数据,动力学曲线表明吸附速率是二阶的。对于1–109 mg / L的Cd 2 + 浓度(mg / L),使用大约3.48–10.3 g / L的B活性孢子生物量可实现良好的去除效率(> 80%)。蜡状S5菌株。在镉污染水的处理中,耐镉的细菌活化的碳固定柱可以使用更长的时间,并且比对照柱具有更好的处理效果。另外,使用小鼠的毒性评估表明蜡状芽孢杆菌S5菌株及其发酵产物的生物量是无毒的。因此,孤立的 B cereus S5 菌株可以被认为是替代性生物吸附剂,可用于对严重镉污染的应急响应以及对痕量镉污染的常规处理。

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