Keller R M, Wüthrich K
Biochim Biophys Acta. 1978 Mar 28;533(1):195-208. doi: 10.1016/0005-2795(78)90564-0.
In the 360 MHz 1H NMR spectra of horse heart ferrocytochrome c recorded after suitable digital resolution enhancement, the resonances of all the heme c protons with the exception of those of the propionic acid side chains were observed as well resolved lines. From spin decoupling and nuclear Overhauser effects in homonuclear double resonance experiments, all these resonances were assigned to their respective positions in heme c. With saturation transfer experiments in solutions of partially reduced cytochrome c, individual assignments were further obtained for the six heme c methyl resonances in ferricytochrome c. The present experiments add individual assignments to the earlier identifications of the heme c ring methyl and meso-proton resonances, and show that the earlier identifications of the thioether bridge methyl resonances must be revised. These data provide a basis for more detailed descriptions of the electronic structure of heme c and its possible relations with the pathway of the electron transfer in and out of the cytochrome c molecule. Furthermore, the pseudocontact shifts of the thioether bridge methyl resonances could be related to the electronic g-tensor measured by EPR in ferricytochrome c single crystals at low temperature. From this it will now be possible without chemical modification of the protein, to compare in detail the solution conformations near the heme c in reduced and oxidized cytochrome c and thus hopefully to obtain additional insights into the mechanism of the biological redox reaction of this protein.
在经过适当的数字分辨率增强后记录的马心亚铁细胞色素c的360兆赫1H NMR谱中,除了丙酸侧链的那些质子外,所有血红素c质子的共振都表现为分辨良好的谱线。通过同核双共振实验中的自旋去耦和核Overhauser效应,所有这些共振都被指定到它们在血红素c中的各自位置。在部分还原的细胞色素c溶液中进行饱和转移实验,进一步获得了高铁细胞色素c中六个血红素c甲基共振的单独归属。本实验为血红素c环甲基和中质子共振的早期鉴定增加了单独的归属,并表明硫醚桥甲基共振的早期鉴定必须修正。这些数据为更详细地描述血红素c的电子结构及其与细胞色素c分子内外电子转移途径的可能关系提供了基础。此外,硫醚桥甲基共振的赝接触位移可能与低温下在高铁细胞色素c单晶中通过EPR测量的电子g张量有关。由此现在有可能在不对蛋白质进行化学修饰的情况下,详细比较还原态和氧化态细胞色素c中血红素c附近的溶液构象,从而有望获得对该蛋白质生物氧化还原反应机制的更多见解。