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Immobilization of α-amylase on gum acacia stabilized magnetite nanoparticles,an easily recoverable and reusable support
Institution:1. Institute of Atomic and Molecular Sciences, PO Box 23-166, Taipei, 106, Taiwan, ROC;2. Center for Theoretical Atomic and Molecular Physics, The Academy of Fundamental and Interdisciplinary Sciences, Harbin Institute of Technology, Harbin 150080, PR China;1. Product & Process Engineering Centre, Fresenius Kabi Deutschland GmbH, Bad Homburg, Germany;2. REOROM Laboratory, Hydraulics Department, Politehnica University of Bucharest, Bucharest, Romania;1. School of Biotechnology, Faculty of Science, Banaras Hindu University, Varanasi 221005, India;2. Nanoscience and Nanotechnology Unit, Department of Physics, Banaras Hindu University, Varanasi 221005, India;1. Department of Biology, Science and Research Branch, Islamic Azad University, Tehran, Iran;2. Department of Biotechnology, Faculty of Advanced Sciences and Technologies, University of Isfahan, Isfahan, 81746-73441, Iran;3. Department of Chemistry, University of Isfahan, Isfahan, 81746-73441, Iran
Abstract:In this work, α-amylase is immobilized, using glutaraldehyde, onto magnetite nanoparticles prepared using gum acacia as the steric stabilizer (GA-MN), for the first time. The immobilization of amylase to GA-MN is very fast and the synthesis of GA-MN is very simple. The use of GA enables higher immobilization of α-amylase (60%), in contrast to the unmodified magnetite nanoparticles (∼20%). The optimum pH and temperature for maximum enzyme activity for the immobilized amylase are identified to be 7.0 and 40 °C, respectively, for the hydrolysis of starch. The kinetic studies confirm the Michaelis–Menten behavior and suggests overall enhancement in the performance of the immobilized enzyme with reference to the free enzyme. Similarly the thermal stability of the enzyme is found to increase after the immobilization. The GA-MN bound amylase has also been demonstrated to be capable of being reused for at least six cycles while retaining ∼70% of the initial activity. By using a magnetically active support, quick separation of amylase from reaction mixture is enabled. The catalytic rate of amylase is actually found to enhance by twofold after the immobilization, which is extremely advantageous in industry. At higher temperature, the immobilized enzyme exhibits higher enzyme activity than that of the free enzyme.
Keywords:α-Amylase  Immobilization of enzyme  Gum acacia  Magnetite nanoparticles
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