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Mesostructured cellular foam silica materials for laccase immobilization and tetracycline removal: A comprehensive study

机译:用于漆酶固定化和四环素去除的腹腔结构化细胞泡沫二氧化硅材料:综合研究

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Due to its exceptional textural, morphological and mechanical properties, mesostructured cellular foam (MCF) silica is a suitable support material for enzyme immobilization. However, the simple and efficient protocol of enzyme immobilization using MCF is often overlooked. Thus, in the presented study, we describe the synthesis, modification and characterization of mesostructured cellular foam silica for use in laccase immobilization. It has been established that the synthesized materials are characterized by high surface area equal to approx. 550 m(2) g(-1) and pores with diameters of approx. 20 nm, which makes them suitable for effective enzyme binding. Furthermore, immobilization of the laccase onto both, unmodified and Cu-modified MCF has been carried out, resulting in process yield of over 95% and 85%, respectively. Upon immobilization, irrespectively of the support used, laccase retained higher activity (over 80%) at a wider temperature (20-40 degrees C) and pH (4-7) range, as compared to the free enzyme, which exhibited such high activity only at pH 5 and 30 degrees C. In addition, the reusability of the laccase immobilized onto MCF + Cu material has also been improved as it still retained approx. 90% of its initial activity after 10 reaction cycles. Finally, the obtained biocatalytic systems have been applied for degradation of tetracycline from aqueous solutions resulting in 100% removal of the antibiotic by the MCF + Cu + lac system due to simultaneous adsorption and biocatalytic conversion.
机译:由于其特殊的纹理,形态和机械性能,腹部结构化的细胞泡沫(MCF)二氧化硅是酶固定化的合适载体材料。然而,使用MCF的简单和有效的酶固定化协议通常被忽略。因此,在呈现的研究中,我们描述了用于漆酶固定的腹腔结构化细胞泡沫二氧化硅的合成,修饰和表征。已经确定,合成材料的特征在于高表面积等于约。 550米(2)G(-1)和直径约为的孔。 20nm,使它们适用于有效的酶结合。此外,已经进行了对漆酶固定到两者上,未改性和Cu改性的MCF,导致过程产率分别超过95%和85%。在固定后,与所用磷酸盐(20-40℃)和pH(4-7)的游离酶相比,无论使用较高的酶,不断地使用所用的载体此外,仅在pH5和30℃下仅加入到MCF + Cu材料上的漆酶的可重用性也得到了改善,因为它仍然保持约。 10个反应循环后其初始活性的90%。最后,所获得的生物催化系统已被应用于从水溶液中降解四环素,导致由于同时吸附和生物催化转化,通过MCF + Cu + Lac系统除去抗生素的100%除去。

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