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氧化还原活性金属酶的设计策略:在制氢中的应用。

Design Strategies for Redox Active Metalloenzymes: Applications in Hydrogen Production.

作者信息

Alcala-Torano R, Sommer D J, Bahrami Dizicheh Z, Ghirlanda G

机构信息

School of Molecular Sciences, Arizona State University, Tempe, AZ, United States.

School of Molecular Sciences, Arizona State University, Tempe, AZ, United States.

出版信息

Methods Enzymol. 2016;580:389-416. doi: 10.1016/bs.mie.2016.06.001. Epub 2016 Jul 1.

Abstract

The last decades have seen an increased interest in finding alternative means to produce renewable fuels in order to satisfy the growing energy demands and to minimize environmental impact. Nature can serve as an inspiration for development of these methodologies, as enzymes are able to carry out a wide variety of redox processes at high efficiency, employing a wide array of earth-abundant transition metals to do so. While it is well recognized that the protein environment plays an important role in tuning the properties of the different metal centers, the structure/function relationships between amino acids and catalytic centers are not well resolved. One specific approach to study the role of proteins in both electron and proton transfer is the biomimetic design of redox active peptides, binding organometallic clusters in well-understood protein environments. Here we discuss different strategies for the design of peptides incorporating redox active FeS clusters, [FeFe]-hydrogenase organometallic mimics, and porphyrin centers into different peptide and protein environments in order to understand natural redox enzymes.

摘要

在过去几十年里,人们对寻找生产可再生燃料的替代方法越来越感兴趣,以满足不断增长的能源需求并尽量减少对环境的影响。大自然可以为这些方法的开发提供灵感,因为酶能够利用多种地球上储量丰富的过渡金属高效地进行各种各样的氧化还原过程。虽然人们普遍认识到蛋白质环境在调节不同金属中心的性质方面起着重要作用,但氨基酸与催化中心之间的结构/功能关系尚未得到很好的解析。研究蛋白质在电子和质子转移中作用的一种具体方法是氧化还原活性肽的仿生设计,即在人们熟知的蛋白质环境中结合有机金属簇。在这里,我们讨论了将氧化还原活性FeS簇、[FeFe]-氢化酶有机金属模拟物和卟啉中心纳入不同肽和蛋白质环境的肽设计的不同策略,以便了解天然氧化还原酶。

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