Institut de Chimie, UMR, Laboratoire de spectroscopie vibrationnelle et électrochimie des biomolécules Université de Strasbourg, France.
Chemphyschem. 2011 Oct 4;12(14):2669-74. doi: 10.1002/cphc.201100165. Epub 2011 Sep 2.
Herein, we present the development of a far-infrared spectroscopic approach for studying metalloenzyme active sites in a redox-dependent manner. An electrochemical cell with 5 mm path and based on silicon windows was found to be appropriate for the measurement of aqueous solutions down to 200 cm(-1) . The cell was probed with the infrared redox signature of the metal-ligand vibrations of different iron-sulfur proteins. Each Fe-S cluster type was found to show a specific spectral signature. As a common feature, a downshift of the frequency of the Fe-S vibrations was seen upon reduction, in line with the increase of the Fe-S bond. This downshift was found to be fully reversible. Electrochemically induced FTIR difference spectroscopy in the far infrared is now possible, opening new perspectives on the understanding of metalloproteins in function of the redox state.
在此,我们提出了一种远红外光谱方法,用于研究氧化还原依赖性金属酶活性部位。发现具有 5mm 光程的基于硅窗的电化学池适合于测量低至 200cm(-1)的水溶液。该电池用不同铁硫蛋白的金属配体振动的红外氧化还原特征进行了探测。发现每种 Fe-S 簇类型都显示出特定的光谱特征。作为共同特征,在还原时观察到 Fe-S 振动的频率下移,与 Fe-S 键的增加一致。这种下移被发现是完全可逆的。现在可以在远红外进行电化学诱导的傅里叶变换红外差谱,为理解氧化还原状态下的金属蛋白开辟了新的视角。