Cheddar G, Meyer T E, Cusanovich M A, Stout C D, Tollin G
Department of Biochemistry, University of Arizona, Tucson 85721.
Biochemistry. 1989 Jul 25;28(15):6318-22. doi: 10.1021/bi00441a025.
The effect of ionic strength on the rate constant for electron transfer has been used to determine the magnitude and charge sign of the net electrostatic potential which exists in close proximity to the sites of electron transfer on various c-type cytochromes. The negatively charged ferricyanide ion preferentially reacts at the positively charged exposed heme edge region on the front side of horse cytochrome c and Paracoccus cytochrome c2. In contrast, at low ionic strength, the positively charged cobalt phenanthroline ion interacts with the negatively charged back side of cytochrome c2, and at high ionic strength at a positively charged site on the front side of the cytochrome. With horse cytochrome c, over the ionic strength range studied, cobalt phenanthroline reacts only at a positively charged site which is probably not at the heme edge. These inorganic oxidants do not react at the relatively uncharged exposed heme edge sites on Azotobacter cytochrome c5 and Pseudomonas cytochrome c-551, but rather at a negatively charged site which is away from the heme edge. The results demonstrate that at least two electron-transferring sites on a single cytochrome can be functional, depending on the redox reactant used and the ionic strength. Electrostatic interactions between charge distributions on the cytochrome surface and the other reactant, or interactions involving uncharged regions on the protein(s), are critical in determining the preferred sites of electron transfer and reaction rate constants. When unfavorable electrostatic effects occur at a site near the redox center, less optimal sites at a greater distance can become kinetically important.
离子强度对电子转移速率常数的影响已被用于确定在各种c型细胞色素上电子转移位点附近存在的净静电势的大小和电荷符号。带负电荷的铁氰化物离子优先在马细胞色素c和嗜甲基球菌细胞色素c2正面带正电荷的暴露血红素边缘区域发生反应。相比之下,在低离子强度下,带正电荷的钴菲咯啉离子与细胞色素c2的带负电荷的背面相互作用,而在高离子强度下则与细胞色素正面的带正电荷位点相互作用。对于马细胞色素c,在所研究的离子强度范围内,钴菲咯啉仅在一个可能不在血红素边缘的带正电荷位点发生反应。这些无机氧化剂不会在固氮菌细胞色素c5和假单胞菌细胞色素c-551相对不带电荷的暴露血红素边缘位点发生反应,而是在远离血红素边缘的带负电荷位点发生反应。结果表明,取决于所使用的氧化还原反应物和离子强度,单个细胞色素上至少有两个电子转移位点可以发挥作用。细胞色素表面电荷分布与其他反应物之间的静电相互作用,或涉及蛋白质上不带电荷区域的相互作用,对于确定电子转移的优先位点和反应速率常数至关重要。当氧化还原中心附近的位点出现不利的静电效应时,距离较远的不太理想的位点在动力学上可能变得重要。