Ma Yu, Zhang Ningning, Vernet Guillem, Kara Selin
Biocatalysis and Bioprocessing Group, Department of Biological and Chemical Engineering, Aarhus University, Aarhus, Denmark.
Institute of Technical Chemistry, Leibniz University Hannover, Hannover, Germany.
Front Bioeng Biotechnol. 2022 Jul 22;10:944226. doi: 10.3389/fbioe.2022.944226. eCollection 2022.
Biocatalytic cascades play a fundamental role in sustainable chemical synthesis. Fusion enzymes are one of the powerful toolboxes to enable the tailored combination of multiple enzymes for efficient cooperative cascades. Especially, this approach offers a substantial potential for the practical application of cofactor-dependent oxidoreductases by forming cofactor self-sufficient cascades. Adequate cofactor recycling while keeping the oxidized/reduced cofactor in a confined microenvironment benefits from the fusion fashion and makes the use of oxidoreductases in harsh non-aqueous media practical. In this mini-review, we have summarized the application of various fusion enzymes in aqueous and non-aqueous media with a focus on the discussion of linker design within oxidoreductases. The design and properties of the reported linkers have been reviewed in detail. Besides, the substrate loadings in these studies have been listed to showcase one of the key limitations (low solubility of hydrophobic substrates) of aqueous biocatalysis when it comes to efficiency and economic feasibility. Therefore, a straightforward strategy of applying non-aqueous media has been briefly discussed while the potential of using the fusion oxidoreductase of interest in organic media was highlighted.
生物催化级联反应在可持续化学合成中发挥着重要作用。融合酶是实现多种酶定制组合以进行高效协同级联反应的强大工具之一。特别是,这种方法通过形成辅因子自给自足的级联反应,为依赖辅因子的氧化还原酶的实际应用提供了巨大潜力。在受限的微环境中保持氧化型/还原型辅因子的同时进行充分的辅因子循环,得益于融合方式,使得氧化还原酶在苛刻的非水介质中的应用成为现实。在这篇综述中,我们总结了各种融合酶在水相和非水介质中的应用,重点讨论了氧化还原酶内部的连接子设计。已详细综述了所报道连接子的设计和性质。此外,列出了这些研究中的底物负载量,以展示水相生物催化在效率和经济可行性方面的一个关键限制(疏水底物的低溶解度)。因此,简要讨论了应用非水介质的直接策略,同时强调了在有机介质中使用感兴趣的融合氧化还原酶的潜力。