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合理调节单个铜蓝蛋白的还原电位使其超出自然范围。

Rationally tuning the reduction potential of a single cupredoxin beyond the natural range.

作者信息

Marshall Nicholas M, Garner Dewain K, Wilson Tiffany D, Gao Yi-Gui, Robinson Howard, Nilges Mark J, Lu Yi

机构信息

Department of Chemistry, University of Illinois, Urbana-Champaign, Illinois 61801, USA.

出版信息

Nature. 2009 Nov 5;462(7269):113-6. doi: 10.1038/nature08551.

Abstract

Redox processes are at the heart of numerous functions in chemistry and biology, from long-range electron transfer in photosynthesis and respiration to catalysis in industrial and fuel cell research. These functions are accomplished in nature by only a limited number of redox-active agents. A long-standing issue in these fields is how redox potentials are fine-tuned over a broad range with little change to the redox-active site or electron-transfer properties. Resolving this issue will not only advance our fundamental understanding of the roles of long-range, non-covalent interactions in redox processes, but also allow for design of redox-active proteins having tailor-made redox potentials for applications such as artificial photosynthetic centres or fuel cell catalysts for energy conversion. Here we show that two important secondary coordination sphere interactions, hydrophobicity and hydrogen-bonding, are capable of tuning the reduction potential of the cupredoxin azurin over a 700 mV range, surpassing the highest and lowest reduction potentials reported for any mononuclear cupredoxin, without perturbing the metal binding site beyond what is typical for the cupredoxin family of proteins. We also demonstrate that the effects of individual structural features are additive and that redox potential tuning of azurin is now predictable across the full range of cupredoxin potentials.

摘要

氧化还原过程是化学和生物学中众多功能的核心,从光合作用和呼吸作用中的长程电子转移到工业和燃料电池研究中的催化作用。这些功能在自然界中仅由有限数量的氧化还原活性剂来完成。这些领域中长期存在的一个问题是,如何在对氧化还原活性位点或电子转移特性几乎没有改变的情况下,在很宽的范围内微调氧化还原电位。解决这个问题不仅将推进我们对长程非共价相互作用在氧化还原过程中作用的基本理解,还将有助于设计具有定制氧化还原电位的氧化还原活性蛋白,用于人工光合中心或能量转换的燃料电池催化剂等应用。在这里,我们表明两种重要的二级配位层相互作用,即疏水性和氢键作用,能够在700 mV的范围内调节铜蓝蛋白天青蛋白的还原电位,超过了报道的任何单核铜蓝蛋白的最高和最低还原电位,同时不会对金属结合位点造成超出铜蓝蛋白家族蛋白质典型情况的干扰。我们还证明了各个结构特征的影响是可加的,并且现在可以预测天青蛋白在整个铜蓝蛋白电位范围内的氧化还原电位调节情况。

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