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含镍一氧化碳脱氢酶对二氧化碳和一氧化碳高效电催化相互转化的研究。

Investigations of the efficient electrocatalytic interconversions of carbon dioxide and carbon monoxide by nickel-containing carbon monoxide dehydrogenases.

作者信息

Wang Vincent C-C, Ragsdale Stephen W, Armstrong Fraser A

机构信息

Department of Chemistry, Inorganic Chemistry Laboratory, University of Oxford, South Parks Road, Oxford, OX1 3QR, UK.

出版信息

Met Ions Life Sci. 2014;14:71-97. doi: 10.1007/978-94-017-9269-1_4.


DOI:10.1007/978-94-017-9269-1_4
PMID:25416391
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4261625/
Abstract

Carbon monoxide dehydrogenases (CODH) play an important role in utilizing carbon monoxide (CO) or carbon dioxide (CO2) in the metabolism of some microorganisms. Two distinctly different types of CODH are distinguished by the elements constituting the active site. A Mo-Cu containing CODH is found in some aerobic organisms, whereas a Ni-Fe containing CODH (henceforth simply Ni-CODH) is found in some anaerobes. Two members of the simplest class (IV) of Ni-CODH behave as efficient, reversible electrocatalysts of CO2/CO interconversion when adsorbed on a graphite electrode. Their intense electroactivity sets an important benchmark for the standard of performance at which synthetic molecular and material electrocatalysts comprised of suitably attired abundant first-row transition elements must be able to operate. Investigations of CODHs by protein film electrochemistry (PFE) reveal how the enzymes respond to the variable electrode potential that can drive CO2/CO interconversion in each direction, and identify the potential thresholds at which different small molecules, both substrates and inhibitors, enter or leave the catalytic cycle. Experiments carried out on a much larger (Class III) enzyme CODH/ACS, in which CODH is complexed tightly with acetyl-CoA synthase, show that some of these characteristics are retained, albeit with much slower rates of interfacial electron transfer, attributable to the difficulty in making good electronic contact at the electrode. The PFE results complement and clarify investigations made using spectroscopic investigations.

摘要

一氧化碳脱氢酶(CODH)在某些微生物的新陈代谢中利用一氧化碳(CO)或二氧化碳(CO₂)的过程中发挥着重要作用。根据构成活性位点的元素,可区分出两种截然不同类型的CODH。在一些需氧生物中发现了含钼 - 铜的CODH,而在一些厌氧生物中发现了含镍 - 铁的CODH(以下简称镍 - CODH)。镍 - CODH最简单类别(IV)中的两个成员吸附在石墨电极上时,可作为高效、可逆的CO₂/CO相互转化电催化剂。它们强烈的电活性为合成分子和由合适修饰的丰富第一排过渡元素组成的材料电催化剂必须能够运行的性能标准设定了重要基准。通过蛋白质膜电化学(PFE)对CODH的研究揭示了这些酶如何响应可变电极电位,该电位可驱动CO₂/CO在每个方向上的相互转化,并确定不同小分子(底物和抑制剂)进入或离开催化循环的电位阈值。在一种更大的(III类)酶CODH/ACS上进行的实验表明,其中CODH与乙酰辅酶A合酶紧密结合,尽管界面电子转移速率要慢得多,这归因于在电极上难以实现良好的电子接触,但仍保留了一些这些特性。PFE结果补充并阐明了使用光谱研究进行的调查。

相似文献

[1]
Investigations of the efficient electrocatalytic interconversions of carbon dioxide and carbon monoxide by nickel-containing carbon monoxide dehydrogenases.

Met Ions Life Sci. 2014

[2]
O2 Inhibition of Ni-Containing CO Dehydrogenase Is Partly Reversible.

Chemistry. 2015-12-21

[3]
X-Ray Crystallography of Carbon Monoxide Dehydrogenases.

Methods Mol Biol. 2019

[4]
Carbon monoxide. Toxic gas and fuel for anaerobes and aerobes: carbon monoxide dehydrogenases.

Met Ions Life Sci. 2014

[5]
Investigations of two bidirectional carbon monoxide dehydrogenases from Carboxydothermus hydrogenoformans by protein film electrochemistry.

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[6]
Investigations by Protein Film Electrochemistry of Alternative Reactions of Nickel-Containing Carbon Monoxide Dehydrogenase.

J Phys Chem B. 2015-10-29

[7]
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Appl Environ Microbiol. 2017-8-1

[8]
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[9]
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[10]
First-Principles Calculations on Ni,Fe-Containing Carbon Monoxide Dehydrogenases Reveal Key Stereoelectronic Features for Binding and Release of CO to/from the C-Cluster.

Inorg Chem. 2021-1-4

引用本文的文献

[1]
Concatenating Microbial, Enzymatic, and Organometallic Catalysis for Integrated Conversion of Renewable Carbon Sources.

JACS Au. 2024-10-21

[2]
Electronic isomerism in a heterometallic nickel-iron-sulfur cluster models substrate binding and cyanide inhibition of carbon monoxide dehydrogenase.

Chem Sci. 2024-3-27

[3]
Current status of carbon monoxide dehydrogenases (CODH) and their potential for electrochemical applications.

Bioresour Bioprocess. 2023-11-27

[4]
Bio-inspired CO reduction by a rhenium tricarbonyl bipyridine-based catalyst appended to amino acids and peptidic platforms: incorporating proton relays and hydrogen-bonding functional groups.

Faraday Discuss. 2017-6-2

[5]
Ligand binding at the A-cluster in full-length or truncated acetyl-CoA synthase studied by X-ray absorption spectroscopy.

PLoS One. 2017-2-8

本文引用的文献

[1]
Structure, function, and mechanism of the nickel metalloenzymes, CO dehydrogenase, and acetyl-CoA synthase.

Chem Rev. 2014-4-23

[2]
How light-harvesting semiconductors can alter the bias of reversible electrocatalysts in favor of H2 production and CO2 reduction.

J Am Chem Soc. 2013-9-26

[3]
Investigations of two bidirectional carbon monoxide dehydrogenases from Carboxydothermus hydrogenoformans by protein film electrochemistry.

Chembiochem. 2013-9-3

[4]
A unified electrocatalytic description of the action of inhibitors of nickel carbon monoxide dehydrogenase.

J Am Chem Soc. 2013-1-31

[5]
Electrocatalytic mechanism of reversible hydrogen cycling by enzymes and distinctions between the major classes of hydrogenases.

Proc Natl Acad Sci U S A. 2012-7-16

[6]
Visible light-driven CO2 reduction by enzyme coupled CdS nanocrystals.

Chem Commun (Camb). 2011-11-15

[7]
n-Butyl isocyanide oxidation at the [NiFe4S4OH(x)] cluster of CO dehydrogenase.

J Biol Inorg Chem. 2011-9-9

[8]
Reversibility and efficiency in electrocatalytic energy conversion and lessons from enzymes.

Proc Natl Acad Sci U S A. 2011-8-15

[9]
Metal centers in the anaerobic microbial metabolism of CO and CO2.

Metallomics. 2011-6-6

[10]
Carbon monoxide dehydrogenase reaction mechanism: a likely case of abnormal CO2 insertion to a Ni-H(-) bond.

Inorg Chem. 2011-1-19

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