Oxygen-resistant [FeFe]hydrogenases: new biocatalysis tools for clean energy and cascade reactions

IF 3.4 3区 化学 Q2 Chemistry
Francesca Valetti, Simone Morra, Lisa Barbieri, Sabrina Dezzani, Alessandro Ratto, Gianluca Catucci, Sheila J. Sadeghi and Gianfranco Gilardi
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Abstract

The use of enzymes to generate hydrogen, instead of using rare metal catalysts, is an exciting area of study in modern biochemistry and biotechnology, as well as biocatalysis driven by sustainable hydrogen. Thus far, the oxygen sensitivity of the fastest hydrogen-producing/exploiting enzymes, [FeFe]hydrogenases, has hindered their practical application, thereby restricting innovations mainly to their [NiFe]-based, albeit slower, counterparts. Recent exploration of the biodiversity of clostridial hydrogen-producing enzymes has yielded the isolation of representatives from a relatively understudied group. These enzymes possess an inherent defense mechanism against oxygen-induced damage. This discovery unveils fresh opportunities for applications such as electrode interfacing, biofuel cells, immobilization, and entrapment for enhanced stability in practical uses. Furthermore, it suggests potential combinations with cascade reactions for CO2 conversion or cofactor regeneration, like NADPH, facilitating product separation in biotechnological processes. This work provides an overview of this new class of biocatalysts, incorporating unpublished protein engineering strategies to further investigate the dynamic mechanism of oxygen protection and to address crucial details remaining elusive such as still unidentified switching hot-spots and their effects. Variants with improved kcat as well as chimeric versions with promising features to attain gain-of-function variants and applications in various biotechnological processes are also presented.

Abstract Image

耐氧[FeFe]氢酶:用于清洁能源和级联反应的新型生物催化工具
利用酶而不是稀有金属催化剂产生氢气,是现代生物化学和生物技术以及可持续氢气驱动的生物催化的一个令人兴奋的研究领域。迄今为止,[FeFe]氢酶这种产氢/利用氢最快的酶对氧的敏感性阻碍了它们的实际应用,从而使创新主要局限于以[NiFe]为基础(尽管速度较慢)的同类酶。最近对梭菌产氢酶生物多样性的探索,从一个研究相对不足的群体中分离出了一些代表。这些酶具有固有的防御机制,可抵御氧引起的损害。这一发现为电极接口、生物燃料电池、固定化和夹持等应用带来了新的机遇,从而提高了实际应用中的稳定性。此外,它还提出了与级联反应相结合的潜力,以实现二氧化碳转化或辅助因子再生(如 NADPH),从而促进生物技术过程中的产品分离。本研究综述了这一新型生物催化剂,采用了未发表的蛋白质工程策略,进一步研究了氧保护的动态机制,并解决了仍未确定的关键细节问题,如开关热点及其影响。此外,还介绍了具有改进 kcat 的变体以及具有有望实现功能增益变体和应用于各种生物技术过程的嵌合体。
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来源期刊
Faraday Discussions
Faraday Discussions CHEMISTRY, PHYSICAL-
CiteScore
4.90
自引率
0.00%
发文量
259
审稿时长
2.8 months
期刊介绍: Discussion summary and research papers from discussion meetings that focus on rapidly developing areas of physical chemistry and its interfaces
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