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首页> 外文期刊>Biotechnology Journal: Healthcare,Nutrition,Technology >Reduced graphene oxide hydrogels and xerogels provide efficient platforms for immobilization and laccase production by Trametes pubescens
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Reduced graphene oxide hydrogels and xerogels provide efficient platforms for immobilization and laccase production by Trametes pubescens

机译:还原的氧化石墨烯水凝胶和干凝胶提供了由Trametes pubescens固定和漆酶生产的有效平台

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摘要

Fungal immobilization is an interesting topic in enzyme production and bioprocess development. The properties of graphene (i.e. large surface area, hydrophobicity), together with the possibility of producing it at low cost and with tailor-made properties, make this popular material worthy of investigation as a support for fungal immobilization. In the present paper, 3D-organized structures of reduced graphene oxide (rCO) in hydrogels and theirdried derivatives (xerogels) were synthesized, characterized and investigated as potential supports for the immobilization of the white-rot fungus Trametes pubescens. It was found that the morphology of the hydrogels and xerogels was not influenced by the synthesis conditions; however the 3D structure was preserved after drying and formation of xerogels. Both, hydrogels and xerogels have been shown to be suitable supports for the immobilization of T. pubescens. Additionally, xerogels promoted increased laccase activities and maximum activity values of about 20 ± 1 U/mLwere attained. These activities were much higher than those obtained with other well-known inert supports. Nevertheless, no relationship between support morphology and productivity was found. The encouraging results obtained have paved the way for the development of novel graphene-based supports for microorganism immobilization.
机译:真菌固定化是酶生产和生物工艺开发中一个有趣的话题。石墨烯的特性(即大表面积,疏水性),以及以低成本和量身定制的特性生产石墨烯的可能性,使得这种流行的材料值得研究作为真菌固定化的支持。在本文中,合成了水凝胶及其干燥衍生物(干凝胶)中的氧化石墨烯(rCO)的3D组织结构,表征并研究了其作为固定白腐真菌Trametes pubescens的潜在载体。发现水凝胶和干凝胶的形态不受合成条件的影响。然而,干燥并形成干凝胶后,仍保留了3D结构。水凝胶和干凝胶均已被证明是固定毛竹的合适载体。另外,干凝胶促进了漆酶活性的增加,并且获得了约20±1 U / mL的最大活性值。这些活性比用其他众所周知的惰性载体获得的活性高得多。然而,没有发现载体形态与生产率之间的关系。获得的令人鼓舞的结果为开发新的基于石墨烯的微生物固定化载体铺平了道路。

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