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木蹄层孔菌漆酶在氧化葡聚糖和 MANA-Sepharose CL-4B 载体上的共价固定化的建模与实验验证,用于残留着色剂的生物转化。

Modeling and experimental validation of covalent immobilization of Trametes maxima laccase on glyoxyl and MANA-Sepharose CL 4B supports, for the use in bioconversion of residual colorants.

机构信息

Centro de Estudio de Proteínas, Facultad de Biología, Universidad de La Habana, La Habana, Cuba.

Departamento de Microbiología y Virología, Facultad de Biología, Universidad de La Habana, La Habana, Cuba.

出版信息

Biotechnol Appl Biochem. 2022 Apr;69(2):479-491. doi: 10.1002/bab.2125. Epub 2021 Mar 26.

Abstract

Our novel strategy for the rational design of immobilized derivatives (RDID) is directed to predict the behavior of the protein immobilized derivative before its synthesis, by the usage of mathematic algorithms and bioinformatics tools. However, this approach needs to be validated for each target enzyme. The objective of this work was to validate the RDID strategy for covalent immobilization of the enzyme laccase from Trametes maxima MUCL 44155 on glyoxyl- and monoaminoethyl-N-aminoethyl (MANA)-Sepharose CL 4B supports. Protein surface clusters, more probable configurations of the protein-supports systems at immobilization pHs, immobilized enzyme activity, and protein load were predicted by RDID software. Afterward, immobilization was performed and predictions were experimentally confirmed. As a result, the laccase-MANA-Sepharose CL 4B immobilized derivative is better than laccase-glyoxyl-Sepharose CL 4B in predicted immobilized derivative activity (63.6% vs. 29.5%). Activity prediction was confirmed by an experimentally expressed enzymatic activity of 68%, using 2,6-dimethoxyphenol as substrate. Experimental maximum protein load matches the estimated value (11.2 ± 1.3 vs. 12.1 protein mg/support mL). The laccase-MANA-Sepharose CL 4B biocatalyst has a high specificity for the acid blue 62 colorant. The results obtained in this work suggest the possibility of using this biocatalyst for wastewater treatment.

摘要

我们的新型固定化衍生物(RDID)合理设计策略旨在通过使用数学算法和生物信息学工具,在合成固定化衍生物之前预测蛋白质固定化衍生物的行为。然而,这种方法需要针对每个目标酶进行验证。本工作的目的是验证 RDID 策略在共价固定化酶漆酶来自 Trametes maxima MUCL 44155 在乙二醛和单氨基乙基-N-氨乙基(MANA)-Sepharose CL 4B 载体上的应用。通过 RDID 软件预测蛋白质表面簇、蛋白质-载体系统在固定化 pH 值下更可能的构象、固定化酶活性和蛋白质负载。然后进行固定化,并通过实验证实预测。结果,漆酶-MANA-Sepharose CL 4B 固定化衍生物在预测的固定化衍生物活性方面优于漆酶-乙二醛-Sepharose CL 4B(63.6%比 29.5%)。使用 2,6-二甲氧基苯酚作为底物,通过实验表达的酶活性证实了活性预测为 68%。实验最大蛋白质负载与估计值匹配(11.2±1.3 比 12.1 蛋白质 mg/载体 mL)。漆酶-MANA-Sepharose CL 4B 生物催化剂对酸性蓝 62 染料具有高特异性。本工作获得的结果表明,该生物催化剂可用于废水处理。

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