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闭合碳循环:金属有机框架中用于将CO转化为甲醇的酶促反应

Closing the Loop in the Carbon Cycle: Enzymatic Reactions Housed in Metal-Organic Frameworks for CO Conversion to Methanol.

作者信息

Moyo Praise K, Mehlana Gift, Makhubela Banothile C E, Tshuma Piwai, Chikukwa Evernice S

机构信息

Department of Chemical Sciences, Midlands State University, P. Bag 9055, Senga Road, Gweru, Zimbabwe.

Department of Applied Biosciences and Biotechnology, Midlands State University, P. Bag 9055, Senga Road, Gweru, Zimbabwe.

出版信息

Appl Biochem Biotechnol. 2025 Mar;197(3):1345-1392. doi: 10.1007/s12010-024-05111-1. Epub 2024 Nov 26.

Abstract

The preparation of value-added chemicals from carbon dioxide (CO) can act as a way of reducing the greenhouse gas from the atmosphere. Industrially significant C1 chemicals like methanol (CHOH), formic acid (HCOOH), and formaldehyde (HCHO) can be formed from CO. One sustainable way of achieving this is by connecting the reactions catalyzed by the enzymes formate dehydrogenase (FDH), formaldehyde dehydrogenase (FALDH), and alcohol dehydrogenase (ADH) into a single cascade reaction where CO is hydrogenated to CHOH. For this to be adaptable for industrial use, the enzymes should be immobilized in materials that are extraordinarily protective of the enzymes, inexpensive, stable, and of ultra-large surface area. Metal-organic frameworks (MOFs) meet these criteria and are expected to usher in the much-awaited dispensation of industrial biocatalysis. Unfortunately, little is known about the molecular behaviour of MOF-immobilized FDH, FALDH, and ADH. It is also yet not known which MOFs are most promising for industrial enzyme-immobilization since the field of reticular chemistry is growing exponentially with millions of hypothetical and synthesized MOF structures reported at present. This review initially discusses the properties of the key enzymes required for CO hydrogenation to methanol including available cofactor regeneration strategies. Later, the characterization techniques of enzyme-MOF composites and the successes or lack thereof of enzyme-MOF-mediated CO conversion to CHOH and intermediate products are discussed. We also discuss reported multi-enzyme-MOF systems for CO conversion cognizant of the fact that at present, these systems are the only chance of housing cascade-type biochemical reactions where strict substrate channelling and operational conditions are required. Finally, we delve into future perspectives.

摘要

由二氧化碳(CO₂)制备增值化学品可以作为一种减少大气中温室气体的方法。工业上重要的C1化学品,如甲醇(CH₃OH)、甲酸(HCOOH)和甲醛(HCHO),都可以由CO₂制得。实现这一目标的一种可持续方法是将甲酸脱氢酶(FDH)、甲醛脱氢酶(FALDH)和乙醇脱氢酶(ADH)催化的反应连接成一个单一的级联反应,其中CO₂被氢化为CH₃OH。为了使其适用于工业用途,这些酶应固定在对酶具有极强保护作用、价格低廉、稳定且具有超大表面积的材料中。金属有机框架(MOF)符合这些标准,有望带来人们期待已久的工业生物催化时代。不幸的是,对于MOF固定化的FDH、FALDH和ADH的分子行为知之甚少。由于目前网状化学领域呈指数级增长,已报道了数百万种假设的和合成的MOF结构,因此也尚不清楚哪种MOF最有希望用于工业酶固定化。本综述首先讨论了CO₂氢化为甲醇所需关键酶的性质,包括可用的辅因子再生策略。随后,讨论了酶-MOF复合材料的表征技术,以及酶-MOF介导的CO₂转化为CH₃OH和中间产物的成功与否。我们还讨论了已报道的用于CO₂转化的多酶-MOF系统,因为目前这些系统是容纳需要严格底物通道和操作条件的级联型生化反应的唯一机会。最后,我们深入探讨了未来的前景。

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