酪氨酸酶的固定化及其应用

Nor Suriani Sani, Nik Ahmad Nizam Nik Malek
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引用次数: 0

摘要

固定化酶比溶液中的游离酶具有更强的稳定性和抗环境变化的能力。更重要的是,固定化酶系统的异质性使酶和产物易于回收,多次重复使用,连续的酶处理,快速的反应终止,以及更全面的生物反应器设计。本文探讨了酶固定化的最新发现,使用不同的方法用于各种用途。从包封酪氨酸酶催化的反应中收集到的信息为苯酚生物传感器工业中的异质生物催化剂提供了良好的前景。本文综述了一种将酪氨酸酶生物分子固定化到二氧化硅气凝胶基质中的有效方法。二氧化硅基质已被广泛用于包封各种生物分子,主要用于溶胶-凝胶复合材料。我们还发现溶胶-凝胶法合成的二氧化硅气凝胶保留了所有固定化酶的活性。使用二氧化硅基质进行酶固定化,结合适度的固定化方法,成功地保留了酶的活性。未来的研究应探索实用的封装方法和创造性的修饰支持,以提高固定化酶的商业化,并为工业部门提供新的视角。
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Immobilization of Tyrosinase and Its Application
Immobilized enzymes are more robust and resistant to environmental changes than free enzymes in solution. More crucially, the immobilized enzyme systems' heterogeneity enables facile recovery of enzymes and products, multiple reuses, continuous enzymatic processes, quick reaction termination, and a more comprehensive range of bioreactor designs. This paper examines recent findings on enzyme immobilization using diverse approaches for various uses. The information gathered from the reactions catalyzed by the encapsulated tyrosinase provided a good view of hetero-biocatalysts in the phenol biosensor industries. This review proposes an effective method for immobilizing tyrosinase biomolecules into a silica aerogel matrix. Silica matrix has been utilized to encapsulate a wide range of biomolecules, mainly in sol-gel composites. We also discovered that silica aerogel synthesized from sol-gel method retains all the immobilized enzyme activity. The use of a silica matrix for enzyme immobilization, in conjunction with a moderate immobilization method, results in the successful retention of enzyme activity. Future studies should explore practical encapsulating approaches and inventively modified supports to enhance the commercialization of immobilized enzymes and offer fresh perspectives to the industrial sector.
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