Molecular Enzymology Group, University of Groningen, Groningen, The Netherlands; Department of Chemical and Bioprocesses Engineering, Pontificia Universidad Católica de Chile, Santiago, Chile.
Molecular Enzymology Group, University of Groningen, Groningen, The Netherlands; Department of Biology and Biotechnology "L. Spallanzani", University of Pavia, Pavia, Italy.
Methods Enzymol. 2021;647:107-143. doi: 10.1016/bs.mie.2020.09.008. Epub 2020 Oct 23.
The use of enzymes in organic synthesis is highly appealing due their remarkably high chemo-, regio- and enantioselectivity. Nevertheless, for biosynthetic routes to be industrially useful, the enzymes must fulfill several requirements. Particularly, in case of cofactor-dependent enzymes self-sufficient systems are highly valuable. This can be achieved by fusing enzymes with complementary cofactor dependency. Such bifunctional enzymes are also relatively easy to handle, may enhance stability, and promote product intermediate channeling. However, usually the characteristics of the linker, fusing the target enzymes, are not thoroughly evaluated. A poor linker design can lead to detrimental effects on expression levels, enzyme stability and/or enzyme performance. In this chapter, the effect of the length of a glycine-rich linker was explored for the case study of ɛ-caprolactone synthesis through an alcohol dehydrogenase-cyclohexanone monooxygenase fusion system. The procedure includes cloning of linker variants, expression analysis, determination of thermostability and effect on activity and conversion levels of 15 variants of different linker sizes. The protocols can also be used for the creation of other protein-protein fusions.
由于酶具有极高的化学选择性、区域选择性和对映体选择性,因此在有机合成中使用酶具有很大的吸引力。然而,为了使生物合成途径具有工业实用性,酶必须满足几个要求。特别是对于依赖辅因子的酶,自给自足的系统非常有价值。这可以通过将酶与互补的辅因子依赖性融合来实现。这种双功能酶也相对容易处理,可以提高稳定性并促进产物中间物流。然而,通常情况下,连接酶的连接子的特性并没有得到彻底的评估。较差的连接子设计可能会对表达水平、酶稳定性和/或酶性能产生不利影响。在本章中,研究了甘氨酸丰富的连接子的长度对通过醇脱氢酶-环己酮单加氧酶融合系统合成ε-己内酯的影响。该程序包括连接子变体的克隆、表达分析、耐热性测定以及对 15 种不同连接子大小的变体的活性和转化率的影响。这些方案也可用于创建其他蛋白质-蛋白质融合物。