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二硫键引入及相关半胱氨酸/丝氨酸突变对环己酮单加氧酶稳定性的影响

The effect of disulfide bond introduction and related Cys/Ser mutations on the stability of a cyclohexanone monooxygenase.

作者信息

Schmidt Sandy, Genz Maika, Balke Kathleen, Bornscheuer Uwe T

机构信息

Institute of Biochemistry, Department of Biotechnology & Enzyme Catalysis, Greifswald University, Felix-Hausdorff-Str. 4, 17487 Greifswald, Germany.

Institute of Biochemistry, Department of Biotechnology & Enzyme Catalysis, Greifswald University, Felix-Hausdorff-Str. 4, 17487 Greifswald, Germany.

出版信息

J Biotechnol. 2015 Nov 20;214:199-211. doi: 10.1016/j.jbiotec.2015.09.026. Epub 2015 Sep 26.

Abstract

Baeyer-Villiger monooxygenases (BVMO) belong to the class B of flavin-dependent monooxygenases (type I BVMOs) and catalyze the oxidation of (cyclic) ketones into esters and lactones. The prototype BVMO is the cyclohexanone monooxygenase (CHMO) from Acinetobacter sp. NCIMB 9871. This enzyme shows an impressive substrate scope with a high chemo-, regio- and/or enantioselectivity. BVMO reactions are often difficult, if not impossible to achieve by chemical approaches and this makes these enzymes thus highly desired candidates for industrial applications. Unfortunately, the industrial use is hampered by several factors related to the lack of stability of these biocatalysts. Thus, the aim of this study was to improve the CHMO's long-term stability, one of the most relevant parameter for biocatalytic processes, and additionally its stability against oxidation. We used an easy computational method for the prediction of stabilizing disulfide bonds in the CHMO-scaffold. The three most promising predicted disulfide pairs were created and biochemically characterized. The most oxidatively stable variant (Y411C-A463C) retained nearly 60% activity after incubation with 25 mM H2O2 whereas the wild type retained only 16%. In addition, one extra disulfide pair (T415C-A463C) was created and tested for increased stability. The melting temperature (Tm) of this variant was increased by 5°C with simultaneous improved long-term stability. After verification by ABD-F labeling that this mutant does not form a disulfide bond, single and double Cys/Ser mutants were prepared and investigated. Subsequent analysis revealed that the T415C single point variant is the most stable variant with a 30-fold increased long-term stability (33% residual activity after 24h incubation at 25°C) showcasing a great achievement for practical applications.

摘要

拜耳-维利格单加氧酶(BVMO)属于黄素依赖性单加氧酶的B类(I型BVMO),可催化(环状)酮氧化为酯和内酯。BVMO的原型是来自不动杆菌属NCIMB 9871的环己酮单加氧酶(CHMO)。这种酶具有令人印象深刻的底物范围,具有高化学、区域和/或对映选择性。BVMO反应通常很难通过化学方法实现,即使不是不可能,这使得这些酶成为工业应用中非常理想的候选者。不幸的是,工业应用受到与这些生物催化剂缺乏稳定性相关的几个因素的阻碍。因此,本研究的目的是提高CHMO的长期稳定性,这是生物催化过程中最相关的参数之一,此外还提高其抗氧化稳定性。我们使用一种简单的计算方法来预测CHMO支架中稳定二硫键。创建了三个最有前景的预测二硫键对并进行了生化表征。氧化稳定性最高的变体(Y411C-A463C)在与25 mM H2O2孵育后保留了近60%的活性,而野生型仅保留了16%。此外,创建了一个额外的二硫键对(T415C-A463C)并测试其稳定性是否提高。该变体的解链温度(Tm)提高了5°C,同时长期稳定性得到改善。通过ABD-F标记验证该突变体不形成二硫键后,制备并研究了单和双Cys/Ser突变体。随后的分析表明,T415C单点变体是最稳定的变体,长期稳定性提高了30倍(在25°C孵育24小时后残留活性为33%),这在实际应用中展示了巨大的成就。

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