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Enzymically mediated bioprecipitation of uranium by a Citrobacter sp.: a concerted role for exocellular lipopolysaccharide and associated phosphatase in biomineral formation

机译:通过柑橘杆菌SP酶促介导铀的生物沉淀。:对化细胞脂多糖和生物素形成相关的磷酸酶的一致作用

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A Citrobacter sp. accumulated uranyl ion ((UO_{2}^{2+}) ) via precipitation with phosphate ligand liberated by phosphatase activity. The onset and rate of uranyl phosphate deposition were promoted by (NH_{4}^{+}) , forming NH4UO2PO4, which has a lower solubility product than NaUO2PO4. This acceleration decoupled the rate-limiting chemical crystallization process from the biochemical phosphate ligand generation. This provided a novel approach to monitor the cell-surface-associated changes using atomic-force microscopy in conjunction with transmission electron microscopy and electron-probe X-ray microanalysis, to visualize deposition of uranyl phosphate at the cell surface. Analysis of extracted surface materials by 31P NMR spectroscopy showed phosphorus resonances at chemical shifts of 0·3 and 2·0?p.p.m., consistent with monophosphate groups of the lipid A backbone of the lipopolysaccharide (LPS). Addition of (UO_{2}^{2+}) to the extract gave a yellow precipitate which contained uranyl phosphate, while addition of Cd2+ gave a chemical shift of both resonances to a single new resonance at 3?p.p.m. Acid-phosphatase-mediated crystal growth exocellularly was suggested by the presence of acid phosphatase, localized by immunogold labelling, on the outer membrane and on material exuded from the cells. Metal deposition is proposed to occur via an initial nucleation with phosphate groups localized within the LPS, shown by other workers to be produced exocellularly in association with phosphatase. The crystals are further consolidated with additional, enzymically generated phosphate in close juxtaposition, giving high loads of LPS-bound uranyl phosphate without loss of activity and distinguishing this from simple biosorption, or periplasmic or cellular metal accumulation mechanisms. Accumulation of ‘tethered’ metal phosphate within the LPS is suggested to prevent fouling of the cell surface by the accumulated precipitate and localization of phosphatase exocellularly is consistent with its possible functions in homeostatis and metal resistance.
机译:一个酸杆菌sp。通过磷酸酶活性释放的磷酸盐配体沉淀通过磷酸酶活性累积铀酰离子((UO_ {2} ^ {2 +})。磷酸铀酰沉积的开始和酸速率通过(NH_ {4} ^ {+})促进,形成NH 4 uO 2 PO 4,其具有比NAUO2PO4更低的溶解度产物。该加速度与生物化学磷酸盐配体产生的速率限制化学结晶过程解耦。这提供了一种新的方法来使用原子力显微镜与透射电子显微镜和电子探针X射线微分析结合监测细胞表面相关变化,以便在细胞表面上可视化磷酸铀酰沉积。通过31P NMR光谱分析用31P NMR光谱显示在0·3和2·0≤P.M的化学位移下的磷共振。,与脂质多糖(LPS)的骨干的单磷酸盐基团一致。提取物的(UO_ {2} ^ {2 +} )加入黄色沉淀物,其含有磷酸铀酰基,同时加入CD2 +在3〜P.M的单一新共振的化学偏移到单个新共振。通过酸性磷酸酶,在外膜上局部的酸性磷酸酶和从细胞​​渗出的材料上局部,提出了酸性磷酸酶介导的晶体生长。提出金属沉积通过初始成核与磷酸盐基团定位在LPS内,由其他工人与磷酸酶结合产生的其他工人。晶体进一步巩固在紧密并置的磷酸盐中,含有高负荷的LPS-结合磷酸盐,而不丧失活性,并将其区分离出简单的生物吸附,或周质或细胞金属累积机制。建议在LPS内积聚'束缚'金属磷酸盐,以防止细胞表面对细胞表面的污染通过累积沉淀,并且磷酸酶的局部化与其在稳态和金属抗性中的可能功能一致。

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