Patel Neesha, Seward Harriet E, Svensson Agneta, Gurman Stephen J, Thomson Andrew J, Raven Emma Lloyd
Department of Chemistry, University of Leicester, University Road, LE1 7RH, England, Leicester, UK.
Arch Biochem Biophys. 2003 Oct 15;418(2):197-204. doi: 10.1016/s0003-9861(03)00403-x.
We have exploited the intrinsic conformational flexibility of leghemoglobin to reengineer the heme active site architecture of the molecule by replacement of the mobile His61 residue with tyrosine (H61Y variant). The electronic absorption spectrum of the ferric derivative of H61Y is similar to that observed for the phenolate derivative of the recombinant wild-type protein (rLb), consistent with coordination of Tyr61 to (high-spin) iron. EXAFS data clearly indicate a 6-coordinate heme geometry and a Fe-O bond length of 185pm. MCD and EPR spectroscopies are consistent with this assignment and support ligation by an anionic (tyrosinate) group. The alteration in heme ligation leads to a 148mV decrease in the reduction potential for H61Y (-127+/-5mV) compared to rLb and destabilisation of the functional oxy-derivative. The results are discussed in terms of our wider understanding of other heme proteins with His-Tyr ligation.
我们利用豆血红蛋白固有的构象灵活性,通过用酪氨酸取代可移动的His61残基(H61Y变体),对该分子的血红素活性位点结构进行了重新设计。H61Y的铁衍生物的电子吸收光谱与重组野生型蛋白(rLb)的酚盐衍生物的光谱相似,这与Tyr61与(高自旋)铁配位一致。扩展X射线吸收精细结构(EXAFS)数据清楚地表明了六配位的血红素几何结构和185皮米的Fe-O键长。磁圆二色性(MCD)和电子顺磁共振(EPR)光谱与该归属一致,并支持由阴离子(酪氨酸盐)基团进行的配位。与rLb相比,血红素配位的改变导致H61Y的还原电位降低148毫伏(-127±5毫伏),并使功能性氧衍生物不稳定。我们结合对其他具有His-Tyr配位的血红素蛋白的更广泛理解来讨论这些结果。