Article ID Journal Published Year Pages File Type
6467885 Chemical Engineering Science 2017 7 Pages PDF
Abstract

•Magnetic nanoparticles as supports for laccase immobilization for oxidative biocatalysis.•The immobilized enzyme can be easily reused after simple magnetic separation.•Immobilized laccase retained above 70% of initial activity after five reaction cycles.•Immobilized laccase is a promising biomaterial for dye removal through biocatalyses.

Developments in nanotechnology have led to the discovery of new materials, namely, magnetic nanoparticles (MNPs), that present easy surface functionalization and high surface-to-volume ratios. These properties allow a high mass transfer rate and easy removal from a reaction matrix. Simple separation under an external magnetic field makes them a promising immobilization support for enzymes. In this work, new MNPs were prepared by functionalization with EDTA-TMS and characterized by TEM, FTIR and BET analytical techniques, among others. These MNPs were applied as support for laccase immobilization to create a promising biocatalyst. Despite the known chelating nature of EDTA-TMS, its use for surface modification of MNPs for laccase immobilization is a rather unexplored strategy and is reported here for the first time. At pH 3.5, the immobilization process showed approximately 97% of enzymatic activity recovery. The Michaelis-Menten kinetic properties of immobilized laccase showed a lower Vmax and a similar KM compared to free laccase. Regarding operational stability, the immobilized enzyme presented approximately 73% of its initial activity after five sequential reactive cycles. The immobilized enzyme was successfully applied to the biocatalysis of Indigo Carmine dye degradation. These MNPs with immobilized laccase showed important advantages compared to other materials for application in industrial biochemical processes, biocatalysis and biosensors.

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Physical Sciences and Engineering Chemical Engineering Chemical Engineering (General)
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