首页> 外文OA文献 >Stabilization of a Multimeric β-Galactosidase from Thermus sp. Strain T2 by Immobilization on Novel Heterofunctional Epoxy Supports Plus Aldehyde-Dextran Cross-Linking
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Stabilization of a Multimeric β-Galactosidase from Thermus sp. Strain T2 by Immobilization on Novel Heterofunctional Epoxy Supports Plus Aldehyde-Dextran Cross-Linking

机译:来自Thermus sp。的多聚β-半乳糖苷酶的稳定化。通过固定在新型异功能环氧树脂载体上的T2菌株以及醛-右旋糖酐交联剂

摘要

This work exemplifies the advantages of using a battery of new heterofunctional epoxy supports to immobilize enzymes. We have compared the performance of a standard Sepabeads-epoxy support with other Sepabeads-epoxy supports partially modified with boronate, iminodiacetic, metal chelates, and ethylenediamine in the immobilization of the thermostable β-galactosidase from Thermus sp. strain T2 as a model system. Immobilization yields depended on the support, ranging from 95% using Sepabeads-epoxy-chelate, Sepabeads-epoxy-amino, or Sepabeads-epoxy-boronic to 5% using Sepabeads-epoxy-IDA. Moreover, immobilization rates were also very different when using different supports. Remarkably, the immobilized β-galactosidase derivatives showed very improved but different stabilities after favoring multipoint covalent attachment by long-term alkaline incubation, the enzyme immobilized on Sepabeads-epoxy-boronic being the most stable. This derivative had some subunits of the enzyme not covalently attached to the support (detected by SDS-PAGE). This is a problem if the biocatalysts were to be used in food technology. The optimization of the cross-linking with aldehyde-dextran permitted the full stabilization of the quaternary structure of the enzyme. The optimal derivative was very active in lactose hydrolysis even at 70°C (over 1000 IU/g), maintaining its activity after long incubation times under these conditions and with no risk of product contamination with enzyme subunits.
机译:这项工作例证了使用一组新的异功能环氧载体固定酶的优势。我们已经比较了标准Sepabeads-环氧载体与其他用硼酸酯,亚氨基二乙酸,金属螯合物和乙二胺修饰的Sepabeads-环氧载体在固定Thermus sp。的热稳定β-半乳糖苷酶中的性能。应变T2作为模型系统。固定产率取决于载体,范围从使用Sepabeads-环氧-螯合物,Sepabeads-环氧-氨基或Sepabeads-环氧-硼酸的95%到使用Sepabeads-环氧-IDA的5%。此外,使用不同的支撑物时固定率也有很大差异。值得注意的是,固定化的β-半乳糖苷酶衍生物在通过长期碱性孵育有利于多点共价结合后显示出非常好的改善,但稳定性不同,固定在Sepabeads-环氧-硼酸上的酶是最稳定的。该衍生物具有未与支持物共价连接的某些酶亚基(通过SDS-PAGE检测)。如果将生物催化剂用于食品技术中,这是一个问题。与醛-葡聚糖的交联的最优化使得酶的季结构完全稳定。最佳衍生物即使在70°C(超过1000 IU / g)的乳糖水解中也非常活跃,在这些条件下长时间孵育后仍保持其活性,并且没有酶亚基污染产品的风险。

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