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Structural investigation of Neptunium (Ⅳ) in toxicological processes

机译:Ⅳ毒理学过程中Ⅳ的结构研究

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摘要

General understanding needs to be deepened of intramolecular interactions engaged in molecular actinide species, i.e. physical chemical mechanisms that drive the affinity of chelating ligands for actinide cations still needs to be deepened. In this field, X ray Absorption Spectroscopy has been extensively used as a structural and electronic metal cation probe. Combination with more traditional spectroscopic techniques such as spectrophotometry is an ideal tool for the understanding of the chelation mechanism. Metallobiomolecules are considered elaborate inorganic complexes with well-designed metal active sites. Although the various interaction processes between essential cations important to biology and proteins are widely studied, focus on the actinides is more seldom. Actinide impact on biological cycles has been motivated by risk assessments related to the wide use of nuclear fuel sources and industrial or military applications. In particular, the interactions of these cations with the biologically active complexation sites are only partially understood.
机译:需要深入了解与分子species系元素物质发生的分子内相互作用,即驱动螯合配体对act系阳离子的亲和力的物理化学机理仍然需要加深。在该领域中,X射线吸收光谱已被广泛用作结构和电子金属阳离子探针。与更传统的光谱技术(例如分光光度法)相结合是了解螯合机理的理想工具。金属氧分子被认为是具有精心设计的金属活性位点的精细无机络合物。尽管对生物学重要的必需阳离子与蛋白质之间的各种相互作用过程进行了广泛的研究,但很少关注focus系元素。 to系元素对生物循环的影响是由与广泛使用核燃料源以及工业或军事应用有关的风险评估引起的。特别地,仅部分地理解这​​些阳离子与生物活性络合位点的相互作用。

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