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Chitosan Co-polymeric nanostructures for catalase immobilization

机译:用于过氧化氢酶固定化的壳聚糖共聚物纳米结构

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Catalase is an industrial enzyme used in different areas including medical, textile, food and pharmaceutic industries. In the study, synthetic-natural copolymer in nanosize was synthesized using 2-hydroxyethyl methacrylate (HEMA) as a synthetic material and chitosan (CTS) as a natural material. Immobilized metal-chelate affinity chromatography (IMAC) material was prepared by chelating Cu(II) ions onto p(HEMA-CTS) nanostructures. Characterization studies such as Zeta sizer analysis, Fourier transform infra-red (FTIR) spectroscopy, scanning electron microscopy (SEM), and thermal gravimetric analysis (TGA) were performed during the preparation of IMAC nanostructures. The effects of some parameters (time, polymer amount, pH, initial catalase concentration, ionic strength and temperature) were identified and optimum immobilization conditions were determined as 75 min, 0.1 mg p(HEMA-CTS)-Cu, pH 6.0, and 25 degrees C. Maximum amount of immobilized catalase was detected as 11.29 g/g p(HEMA-CTS)-Cu. Immobilized catalase was desorbed successfully and it was detected that p(HEMA-CTS)-Cu nanostructures can be used repeatedly in catalase immobilization. Immobilization changed optimum temperature value from 37 degrees C to 25 degrees C while it did not change the optimum pH for catalase activity. Furthermore, it was detected that kinetic parameters of catalase changed by immobilization. Finally, operational and storage stabilities of immobilized catalase were investigated.
机译:过氧化氢酶是一种工业酶,用于不同领域,包括医疗,纺织,食品和制药工业。在这项研究中,使用甲基丙烯酸2-羟乙酯(HEMA)作为合成材料和壳聚糖(CTS)作为天然材料合成了纳米尺寸的合成天然共聚物。通过将Cu(II)离子螯合到p(HEMA-CTS)纳米结构上来制备固定化金属螯合亲和色谱(IMAC)材料。在IMAC纳米结构的制备过程中,进行了Zeta粒度分析,傅里叶变换红外(FTIR)光谱,扫描电子显微镜(SEM)和热重分析(TGA)等表征研究。确定了一些参数(时间,聚合物量,pH,过氧化氢酶的初始浓度,离子强度和温度)的影响,并确定了最佳固定条件为75分钟,0.1 mg p(HEMA-CTS)-Cu,pH 6.0和25固定的过氧化氢酶的最大量为11.29 g / gp(HEMA-CTS)-Cu。固定化的过氧化氢酶已成功解吸,并检测到p(HEMA-CTS)-Cu纳米结构可重复用于过氧化氢酶固定化。固定不会将最佳温度值从37摄氏度更改为25摄氏度,而不会改变过氧化氢酶活性的最佳pH。此外,检测到过氧化氢酶的动力学参数通过固定而改变。最后,研究了固定化过氧化氢酶的操作和存储稳定性。

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