Reeve Holly A, Ash Philip A, Park HyunSeo, Huang Ailun, Posidias Michalis, Tomlinson Chloe, Lenz Oliver, Vincent Kylie A
Department of Chemistry, Inorganic Chemistry Laboratory, University of Oxford, Oxford, OX1 3QR, U.K.
Department of Chemistry, Technische Universität Berlin, Berlin 10623, Germany.
Biochem J. 2017 Jan 15;474(2):215-230. doi: 10.1042/BCJ20160513.
The present study considers the ways in which redox enzyme modules are coupled in living cells for linking reductive and oxidative half-reactions, and then reviews examples in which this concept can be exploited technologically in applications of coupled enzyme pairs. We discuss many examples in which enzymes are interfaced with electronically conductive particles to build up heterogeneous catalytic systems in an approach which could be termed synthetic biochemistry We focus on reactions involving the H/H redox couple catalysed by NiFe hydrogenase moieties in conjunction with other biocatalysed reactions to assemble systems directed towards synthesis of specialised chemicals, chemical building blocks or bio-derived fuel molecules. We review our work in which this approach is applied in designing enzyme-modified particles for H-driven recycling of the nicotinamide cofactor NADH to provide a clean cofactor source for applications of NADH-dependent enzymes in chemical synthesis, presenting a combination of published and new work on these systems. We also consider related photobiocatalytic approaches for light-driven production of chemicals or H as a fuel. We emphasise the techniques available for understanding detailed catalytic properties of the enzymes responsible for individual redox half-reactions, and the importance of a fundamental understanding of the enzyme characteristics in enabling effective applications of redox biocatalysis.
本研究探讨了氧化还原酶模块在活细胞中如何偶联以连接还原和氧化半反应,然后回顾了在偶联酶对的应用中可以在技术上利用这一概念的实例。我们讨论了许多实例,其中酶与导电颗粒相连接,以一种可称为合成生物化学的方法构建多相催化体系。我们重点关注涉及由镍铁氢化酶部分催化的H/H氧化还原对的反应,以及与其他生物催化反应相结合,以组装用于合成特殊化学品、化学结构单元或生物衍生燃料分子的体系。我们回顾了我们的工作,即在设计用于H驱动烟酰胺辅因子NADH循环的酶修饰颗粒时应用这种方法,为NADH依赖性酶在化学合成中的应用提供清洁的辅因子来源,展示了关于这些体系的已发表和新的工作的结合。我们还考虑了用于光驱动化学品生产或H作为燃料的相关光生物催化方法。我们强调了可用于理解负责单个氧化还原半反应的酶的详细催化特性的技术,以及对酶特性的基本理解在实现氧化还原生物催化有效应用方面的重要性。