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Biomagnetic recovery of selenium: Bioaccumulating of selenium granules in magnetotactic bacteria

机译:硒的生物磁性回收:趋磁细菌中硒颗粒的生物累积

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摘要

Using microorganisms to remove waste and/or neutralize pollutants from contaminated water is attracting much attention due to the environmentally friendly nature of this methodology. However, cell recovery remains a bottleneck and a considerable challenge for the development of this process. Magnetotactic bacteria are a unique group of organisms that can be manipulated by an external magnetic field due to the presence of biogenic magnetite crystals formed within their cells. In this study, we demonstrated the first account of accumulation and precipitation of amorphous elemental selenium nanoparticles within magnetotactic bacteria alongside and independently to magnetite crystal biomineralisation when grown in a medium containing selenium oxyanion (SeO3 (2-)). Quantitative analysis shows that magnetotactic bacteria accumulate the highest amount of target molecules (Se) per cell than any other previously reported of non-ferrous metal/metalloid. For example, 2.4 and 174 times more Se is accumulated when compared to Te uptaken into cells and Cd(2+) adsorption onto the cell surface respectively. Crucially, the bacteria with high levels of Se accumulation were successfully recovered with an external magnetic field. This biomagnetic recovery and effective accumulation of target elements demonstrate the potential for application in bioremediation of polluted water. IMPORTANCE: The development of a technique for effective environmental water remediation is urgently required across the globe. A biological remediation process of waste removal and/or neutralization of pollutant from contaminated water using microorganism has great potential, but cell recovery remains a bottleneck. Magnetotactic bacteria synthesize magnetic particles within their cells, which can be recovered by a magnetic field. Herein, we report the first example of accumulation and precipitation of amorphous elemental selenium nanoparticles within magnetotactic bacteria independent of magnetic particle synthesis. The cells were able to accumulate the highest amount of Se compared to other foreign elements. More importantly, the Se accumulating bacteria were successfully recovered with an external magnetic field. We believe magnetotactic bacteria confer unique advantages of biomagnetic cell recovery and of Se accumulation, providing a new and effective methodology for bioremediation of polluted water.
机译:由于这种方法的环境友好性,使用微生物去除污水中的废物和/或中和污染物引起了广泛的关注。然而,细胞回收仍然是该过程发展的瓶颈和巨大挑战。趋磁细菌是一组独特的生物,由于其细胞内形成的生物磁铁矿晶体的存在,可被外部磁场操纵。在这项研究中,我们证明了当在含有硒氧阴离子(SeO3(2-))的培养基中生长时,趋磁细菌中无定形元素硒纳米粒子的积累和沉淀的第一个原因是与磁铁矿晶体生物矿化同时并独立于磁铁矿晶体生物矿化。定量分析表明,趋磁细菌每个细胞中积累的目标分子(Se)数量最多,比以前报道的任何有色金属/准金属都高。例如,与摄取到细胞中的Te和吸附到细胞表面的Cd(2+)相比,Se的积累量分别是2.4和174倍。至关重要的是,具有高硒积累水平的细菌可以在外部磁场下成功回收。这种生物磁回收和目标元素的有效积累证明了其在污水生物修复中的应用潜力。重要提示:迫切需要在全球范围内开发一种有效的环境水修复技术。使用微生物去除污水和/或从污染水中和污染物的生物修复过程具有巨大潜力,但是细胞回收仍然是瓶颈。趋磁细菌在其细胞内合成磁性颗粒,这些磁性颗粒可通过磁场回收。在本文中,我们报道了磁致趋化细菌中无定形元素硒纳米粒子的积累和沉淀的第一个例子,与磁性粒子合成无关。与其他外来元素相比,这些细胞能够积累最高量的硒。更重要的是,利用外部磁场成功地回收了硒积累细菌。我们相信,趋磁细菌赋予了生物磁细胞回收和硒积累的独特优势,为污水的生物修复提供了一种新的有效方法。

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