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Immobilization of Fungal β-Glucosidase on Silica Gel and Kaolin Carriers

机译:真菌β-葡萄糖苷酶在硅胶和高岭土载体上的固定

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β-Glucosidase is a key enzyme in the hydrolysis of cellulose for producing feedstock glucose for various industrial processes. Reuse of enzyme through immobilization can significantly improve the economic characteristics of the process. Immobilization of the fungal β-glucosidase by covalent binding and physical adsorption on silica gel and kaolin was conducted for consequent application of these procedures in large-scale industrial processes. Different immobilization parameters (incubation time, ionic strength, pH, enzyme/support ratio, glutaric aldehyde concentration, etc.) were evaluated for their effect on the thermal stability of the immobilized enzyme. It was shown that the immobilized enzyme activity is stable at 50 °C over 8 days. It has also been shown that in the case of immobilization on kaolin, approximately 95% of the initial enzyme was immobilized onto support, and loss of activity was not observed. However, covalent binding of the enzyme to silica gel brings significant loss of enzyme activity, and only 35% of activity was preserved. In the case of physical adsorption on kaolin, gradual desorption of enzyme takes place. To prevent this process, we have carried out chemical modification of the protein. As a result, after repeated washings, enzyme desorption from kaolin has been reduced from 75 to 20-25% loss.
机译:β-葡萄糖苷酶是纤维素水解中的关键酶,用于生产各种工业过程的原料葡萄糖。通过固定化酶的重复使用可以显着改善该过程的经济性。通过共价结合以及在硅胶和高岭土上的物理吸附来固定真菌β-葡糖苷酶,以便随后将这些方法应用于大规模工业过程中。评估了不同的固定化参数(孵育时间,离子强度,pH,酶/支持比,戊二醛浓度等)对固定化酶热稳定性的影响。结果表明,固定化酶的活性在50℃稳定8天。还显示出在固定在高岭土上的情况下,约95%的初始酶被固定在载体上,并且未观察到活性丧失。但是,酶与硅胶的共价结合会显着降低酶的活性,并且仅保留了35%的活性。在高岭土上物理吸附的情况下,酶逐渐解吸。为防止此过程,我们对蛋白质进行了化学修饰。结果,在反复洗涤后,高岭土中的酶解吸损失从75%降低到20-25%。

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