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A further insight into the biosorption mechanism of Au(III) by infrared spectrometry

机译:红外光谱对Au(III)的生物吸附机理的进一步了解

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Background The interactions of microbes with metal ions form an important basis for our study of biotechnological applications. Despite the recent progress in studying some properties of Au(III) adsorption and reduction by Bacillus megatherium D01 biomass, there is still a need for additional data on the molecular mechanisms of biosorbents responsible for their interactions with Au(III) to have a further insight and to make a better exposition. Results The biosorption mechanism of Au(III) onto the resting cell of Bacillus megatherium D01 biomass on a molecular level has been further studied here. The infrared (IR) spectroscopy on D01 biomass and that binding Au(III) demonstrates that the molecular recognition of and binding to Au(III) appear to occur mostly with oxygenous- and nitrogenous-active groups of polysaccharides and proteins in cell wall biopolymers, such as hydroxyl of saccharides, carboxylate anion of amino-acid residues (side-chains of polypeptide backbone), peptide bond (amide I and amide II bands), etc.; and that the active groups must serve as nucleation sites for Au(0) nuclei growth. A further investigation on the interactions of each of the soluble hydrolysates of D01, Bacillus licheniformis R08, Lactobacillus sp. strain A09 and waste Saccharomyces cerevisiae biomasses with Au(III) by IR spectrometry clearly reveals an essential biomacromolecule-characteristic that seems the binding of Au(III) to the oxygen of the peptide bond has caused a significant, molecular conformation-rearrangement in polypeptide backbones from β-pleated sheet to α-helices and/or β-turns of protein secondary structure; and that this changing appears to be accompanied by the occurrence, in the peptide bond, of much unbound -C=O and H-N- groups, being freed from the inter-molecular hydrogen-bonding of the β-pleated sheet and carried on the helical forms, as well as by the alternation in side chain steric positions of protein primary structure. This might be reasonably expected to result in higher-affinity interactions of peptide bond and side chains with Au(III). Conclusions The evidence suggests that the polypeptides appear to be activated by the intervention of Au(III) via the molecular reconformation and in turn react upon Au(III) actively and exert profound impacts on the course of Au(0) nucleation and crystal growth.
机译:背景技术微生物与金属离子的相互作用是我们研究生物技术应用的重要基础。尽管最近在研究巨大芽孢杆菌D01生物量对Au(III)的吸附和还原的某些性质方面取得了进展,但仍然需要有关负责与Au(III)相互作用的生物吸附剂的分子机理的其他数据,以进一步了解并做出更好的阐述。结果在分子水平上进一步研究了金(III)在巨大芽孢杆菌D01生物质的静止细胞上的生物吸附机理。 D01生物质的红外(IR)光谱以及与Au(III)的结合表明,Au(III)的分子识别和结合似乎主要发生在细胞壁生物聚合物中的多糖和蛋白质的含氧和含氮活性基团上,如糖的羟基,氨基酸残基的羧酸根阴离子(多肽骨架的侧链),肽键(酰胺I和酰胺II带)等;并且该活性基团必须充当Au(0)核生长的成核位点。进一步研究D01,地衣芽孢杆菌R08,乳酸杆菌sp。的每种可溶性水解产物的相互作用。 A09菌株和带有Au(III)的啤酒酵母废生物质通过红外光谱清楚地揭示了一种基本的生物大分子特征,似乎Au(III)与肽键的氧的结合已引起多肽主链中的显着分子构象重排从β-折叠片到蛋白质二级结构的α-螺旋和/或β-转角;并且这种变化似乎伴随着在肽键中出现了许多未结合的-C = O和HN-基团,它们从β折叠片的分子间氢键中释放出来并带有螺旋形式,以及蛋白质一级结构的侧链空间位置的交替。可以合理预期这会导致肽键和侧链与Au(III)的亲和力更高。结论证据表明,多肽似乎通过分子重构而受到Au(III)的干预而被激活,进而与Au(III)发生积极反应,并对Au(0)的成核和晶体生长过程产生深远的影响。

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