4.7 Article

Novel characteristics of horseradish peroxidase immobilized onto the polyvinyl alcohol-alginate beads and its methyl orange degradation potential

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ELSEVIER SCIENCE BV
DOI: 10.1016/j.ijbiomac.2017.07.042

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Immobilization; Horseradish peroxidase; Polyvinyl alcohol-alginate beads; Surface morphology; Methyl orange; Degradation

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Herein, we report the immobilization of in-house isolated horseradish peroxidase (HRP) from Armoracia rusticana with novel characteristics. The HRP was immobilized onto the self-fabricated polyvinyl alcohol alginate (PVA-alginate) beads using sodium nitrate as a cross-linker. The PVA-alginate beads (2.0 mm size) developed using 10% PVA and 1.5% sodium alginate showed maximal immobilization yield. The surface morphologies of the PVA-alginate (control) and immobilized-HRP were characterized by scanning electron microscopy (SEM). The immobilized-HRP retained 64.14% of its initial activity after 10 consecutive substrate-oxidation cycles as compared to the free counterpart. Simultaneously, the thermal stability of the immobilized-HRP was significantly enhanced as compared to the free HRP. The enzyme leakage (E-L) assay was performed by storing the immobilized-HRP in phosphate buffer solution for 30 days. Evidently, the leakage of immobilized-HRP was recorded to be 6.98% and 14.82% after 15 and 30 days of incubation, respectively. Finally, the immobilized-HRP was used for methyl orange (MO) dye degradation in a batch mode. A noticeable decline in spectral shift accompanied by no appearance of a new peak demonstrated the complete degradation of MO. The degraded fragments of MO were scrutinized by ultra-performance liquid chromatography coupled with mass spectrometry (UPLC-MS). A plausible degradation pathway for MO was proposed based on the identified intermediates. In conclusion, the study portrays the PVA-alginate-immobilized-HRP as a cost-effective and industrially desirable green catalyst, for biotechnological at large and industrial in particular, especially for the treatment of textile dyes or dye-containing industrial waste effluents. (c) 2017 Elsevier B.V. All rights reserved.

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