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XAS Study of Arsenic Coordination in Euglena gracilis Exposed to Arsenite

机译:XAS研究暴露于裸藻的裸眼草中砷的配位。

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Among the few eukaryotes adapted to the extreme conditions prevailing in acid mine drainage, Euglenae are ubiquitous in these metal(loid)-impacted environments, where they can be exposed to As(III) concentrations up to a few hundreds of mg · L~(-1). In order to evaluate their resistance to this toxic metalloid and to identify associated detoxification mechanisms, we investigated arsenic coordination in the model photosynthetic protozoan, Euglena gracilis, cultured at pH 3.2 and exposed to As(III) at concentrations ranging from 10 to 500 mg·L~(-1). E. gracilis is shown to tolerate As(III) concentrations up to 200 mg·L~(-1), without accumulating this metalloid. X-ray absorption spectroscopy at the As K-edge shows that, in the cells, arsenic mainly binds to sulfur ligands, likely in the form of arsenic-tris-glutathione (As-(GS)_3) or arsenic-phytochelatin (As-PC) complexes, and to a much lesser extent, to carbon ligands, presumably in the form of methylated As(III)-compounds. The key role of the glutathione pathway in As(III) detoxification is confirmed by the lower growth rate of E. gracilis cultures exposed to arsenic, in the presence of buthionine sulfoximine, an inhibitor of glutathione synthesis. This study provides the first investigation at the molecular scale of intracellular arsenic speciation in E. gracilis and thus contributes to the understanding of arsenic detoxification mechanisms in a eukaryotic microorganism under extreme acid mine drainage conditions.
机译:在少数几种适合酸性矿山排水的极端条件的真核生物中,在这些受金属(胶体)影响的环境中,真核菌无处不在,它们可以暴露于数百毫克·L〜(As)浓度的砷(III)。 -1)。为了评估其对这种有毒金属的抗性并确定相关的解毒机理,我们研究了光合作用原生动物Euglena gracilis模型中砷的配位,其在pH 3.2下培养并暴露于As(III)浓度为10至500 mg· L〜(-1)。细粒肠杆菌显示出最高200 mg·L〜(-1)的As(III)浓度,而不会积累这种准金属。 As K边缘的X射线吸收光谱表明,在细胞中,砷主要与硫配体结合,很可能以砷-三-谷胱甘肽(As-(GS)_3)或砷-植物螯合蛋白(As- PC)与碳配体的结合程度较小,大概是甲基化的As(III)化合物形式。谷胱甘肽途径在As(III)排毒中的关键作用被证实为:在存在谷胱甘肽合成抑制剂的丁硫氨酸亚砜亚胺的情况下,暴露于砷的细叶肠杆菌培养物的生长速率较低。这项研究提供了首次在细粒肠杆菌中进行细胞内砷形态形成的分子生物学研究,从而有助于了解极端酸性矿山排水条件下真核微生物中砷的解毒机理。

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