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首页> 外文期刊>Geochimica et Cosmochimica Acta: Journal of the Geochemical Society and the Meteoritical Society >Fungus-promoted transformation of lanthanides during the biooxidation of divalent manganese
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Fungus-promoted transformation of lanthanides during the biooxidation of divalent manganese

机译:二价锰生物氧化过程中真菌促进的镧系元素转化

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Although microorganisms possess high sorption capability for lanthanides, the effect of their biological response on lanthanides migration is unclear. Using active fungus Acremonium strictum KR21-2, supplied with nutrients, this study compared the transformation of lanthanides during the biooxidation of Mn(II) in the absence and presence of trisodium citrate. In the absence of trisodium citrate, lanthanides were rapidly sorbed on fungal cells within 24 h, followed by the preferential desorption of Ce over other lanthanides as Mn oxide formed. Most of the desorbed Ce was in the colloidal phase and associated with a biomolecule produced by the active fungus. In contrast, neither desorption of Ce nor release of this biomolecule occurred in the presence of trisodium citrate. Most importantly, the Ce-binding biomolecule was not found to associate with any other trivalent lanthanides tested or with Fe. The biomolecule was characterized as c.a. 4700 Da in size, and it contains saccharides that differed from those non-nuclide-specific organic substances released from resting cells, as reported previously. This study highlights the importance of biotic reactions between lanthanides and microbial cells, which may affect the migration of lanthanides at the water-Mn oxide interface. (c) 2015 Elsevier Ltd. All rights reserved.
机译:尽管微生物对镧系元素具有很高的吸附能力,但是它们对镧系元素迁移的生物学反应的影响尚不清楚。使用提供营养的活性真菌Acremoniumstrictum KR21-2,本研究比较了在不存在柠檬酸三钠的情况下Mn(II)生物氧化过程中镧系元素的转化。在不存在柠檬酸三钠的情况下,镧系元素在24小时内迅速吸附在真菌细胞上,随后随着形成Mn氧化物,Ce比其他镧系元素优先脱附Ce。大部分解吸的Ce处于胶体相,并与活性真菌产生的生物分子有关。相反,在柠檬酸三钠的存在下,Ce的解吸和该生物分子的释放均未发生。最重要的是,未发现结合Ce的生物分子与测试的任何其他三价镧系元素或与Fe缔合。该生物分子的特征为c.a.如先前报道,它的大小为4700 Da,并且其糖与静止细胞释放的非核素特异性有机物质不同。这项研究强调了镧系元素与微生物细胞之间生物反应的重要性,这可能会影响镧系元素在水-锰氧化物界面上的迁移。 (c)2015 Elsevier Ltd.保留所有权利。

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