Tard Cédric, Liu Xiaoming, Ibrahim Saad K, Bruschi Maurizio, De Gioia Luca, Davies Siân C, Yang Xin, Wang Lai-Sheng, Sawers Gary, Pickett Christopher J
Department of Biological Chemistry, John Innes Centre, Norwich NR4 7UH, UK.
Nature. 2005 Feb 10;433(7026):610-3. doi: 10.1038/nature03298.
The metal-sulphur active sites of hydrogenases catalyse hydrogen evolution or uptake at rapid rates. Understanding the structure and function of these active sites--through mechanistic studies of hydrogenases, synthetic assemblies and in silico models--will help guide the design of new materials for hydrogen production or uptake. Here we report the assembly of the iron-sulphur framework of the active site of iron-only hydrogenase (the H-cluster), and show that it functions as an electrocatalyst for proton reduction. Through linking of a di-iron subsite to a {4Fe4S} cluster, we achieve the first synthesis of a metallosulphur cluster core involved in small-molecule catalysis. In addition to advancing our understanding of the natural biological system, the availability of an active, free-standing analogue of the H-cluster may enable us to develop useful electrocatalytic materials for application in, for example, reversible hydrogen fuel cells. (Platinum is currently the preferred electrocatalyst for such applications, but is expensive, limited in availability and, in the long term, unsustainable.).
氢化酶的金属 - 硫活性位点能快速催化析氢或吸氢反应。通过对氢化酶、合成组件和计算机模拟模型进行机理研究,来了解这些活性位点的结构与功能,将有助于指导设计用于制氢或吸氢的新型材料。在此,我们报道了仅含铁氢化酶活性位点(H-簇)的铁 - 硫骨架的组装,并表明其可作为质子还原的电催化剂。通过将双铁亚位点与{4Fe4S}簇相连,我们首次合成了参与小分子催化的金属硫簇核心。除了增进我们对天然生物系统的理解外,H-簇活性、独立类似物的可得性可能使我们能够开发出有用的电催化材料,例如应用于可逆氢燃料电池。(目前铂是此类应用中首选的电催化剂,但价格昂贵、供应有限,从长远来看不可持续。)