Electron-Transferring Metalloenzymes and their Potential Biotechnological Applications.

IF 1.1 4区 化学 Q3 CHEMISTRY, MULTIDISCIPLINARY Chimia Pub Date : 2024-02-28 DOI:10.2533/chimia.2024.13
Ross D Milton
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Abstract

Modern societies rely heavily on centralized industrial processes to generate a multitude of products ranging from electrical energy to synthetic chemical building blocks to construction materials. To date, these processes have relied extensively on energy produced from fossil fuels, which has led to dramatically increased quantities of greenhouse gases (including carbon dioxide) being released into the atmosphere; the effects of the ensuing change to our climate are easily observed in day-to-day life. Some of the reactions catalyzed by these industrial processes can be catalyzed in nature by metal-containing enzymes (metalloenzymes) that have evolved over the course of up to 3.8 billion years to do so under mild physiological conditions using Earth-abundant metals. While such metalloenzymes could in principle facilitate the implementation of carbon-neutral processes around the globe, either in "bio-inspired" catalyst design or even by direct exploitation, many remaining questions surrounding their mechanisms often preclude both options. Here, our recent efforts in understanding and applying metalloenzymes that catalyze reactions such as dinitrogen reduction to ammonia or proton reduction to molecular hydrogen are discussed. In closing, an opinion on the question: "Can these types of enzymes really be used in new biotechnologies?" is offered.

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电子转移金属酶及其潜在的生物技术应用。
现代社会在很大程度上依赖于集中式工业流程来生产从电能到合成化学建材再到建筑材料等多种产品。迄今为止,这些过程广泛依赖化石燃料产生的能源,这导致排放到大气中的温室气体(包括二氧化碳)数量急剧增加;随之而来的气候变化对我们的影响在日常生活中很容易观察到。这些工业过程催化的一些反应在自然界中可以由含金属的酶(金属酶)催化,这些酶经过长达 38 亿年的进化,可以在温和的生理条件下利用地球上丰富的金属进行催化。虽然这类金属酶原则上可以通过 "生物启发 "催化剂设计或直接利用来促进全球碳中性工艺的实施,但围绕其机制的许多遗留问题往往排除了这两种选择。本文讨论了我们最近在理解和应用催化二氮还原成氨或质子还原成分子氢等反应的金属酶方面所做的努力。最后,就 "这些类型的酶真的能催化氨的生成吗?"这些类型的酶真的可以用于新的生物技术吗?
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来源期刊
Chimia
Chimia 化学-化学综合
CiteScore
1.60
自引率
0.00%
发文量
144
审稿时长
2 months
期刊介绍: CHIMIA, a scientific journal for chemistry in the broadest sense covers the interests of a wide and diverse readership. Contributions from all fields of chemistry and related areas are considered for publication in the form of Review Articles and Notes. A characteristic feature of CHIMIA are the thematic issues, each devoted to an area of great current significance.
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