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Simultaneously Discrete Biomineralization of Magnetite and Tellurium Nanocrystals in Magnetotactic Bacteria

机译:趋磁细菌中磁铁矿和碲纳米晶体的同时离散生物矿化

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Magnetotactic bacteria synthesize intracellular magnetosomes comprising membrane-enveloped magnetite crystals within the cell which can be manipulated by a magnetic field. Here, we report the first example of tellurium uptake and crystallization within a magnetotactic bacterial strain, Magnetospirillum magneticum AMB-1. These bacteria independently crystallize tellurium and magnetite within the cell. This is also highly significant as tellurite (TeO_(3)~(2?)), an oxyanion of tellurium, is harmful to both prokaryotes and eukaryotes. Additionally, due to its increasing use in high-technology products, tellurium is very precious and commercially desirable. The use of microorganisms to recover such molecules from polluted water has been considered as a promising bioremediation technique. However, cell recovery is a bottleneck in the development of this approach. Recently, using the magnetic property of magnetotactic bacteria and a cell surface modification technology, the magnetic recovery of Cd~(2+) adsorbed onto the cell surface was reported. Crystallization within the cell enables approximately 70 times more bioaccumulation of the pollutant per cell than cell surface adsorption, while utilizing successful recovery with a magnetic field. This fascinating dual crystallization of magnetite and tellurium by magnetotactic bacteria presents an ideal system for both bioremediation and magnetic recovery of tellurite.
机译:趋磁细菌在细胞内合成包含膜包裹的磁铁矿晶体的细胞内磁小体,可以通过磁场对其进行操纵。在这里,我们报告在趋磁细菌菌株Magnetospirillum magneticum AMB-1中碲吸收和结晶的第一个例子。这些细菌使细胞内的碲和磁铁矿独立结晶。这也是非常重要的,因为碲的一种氧阴离子亚碲酸盐(TeO_(3)〜(2?))对原核生物和真核生物均有害。另外,由于其在高科技产品中的越来越多的使用,碲是非常珍贵的并且在商业上是合乎需要的。使用微生物从污水中回收此类分子已被认为是一种有前途的生物修复技术。但是,细胞恢复是该方法发展的瓶颈。近年来,利用趋磁细菌的磁性和细胞表面修饰技术,报道了吸附到细胞表面的Cd〜(2+)的磁回收率。细胞内的结晶可使每个细胞的污染物生物积蓄比细胞表面吸附高约70倍,同时利用磁场进行成功的回收。趋磁细菌使磁铁矿和碲发生双重结晶,为碲矿的生物修复和磁回收提供了理想的系统。

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