Bogumil R, Kappl R, Hüttermann J, Witzel H
Institut für Biochemie, Universität Münster, Germany.
Biochemistry. 1997 Mar 4;36(9):2345-52. doi: 10.1021/bi962406n.
The interactions of substrates and inhibitors with the Mn2+ ions in the binuclear active center of D-xylose isomerase (XylI) were investigated by EPR spectroscopy at X- and Q-band frequencies. The metal binding site 1 (A site) was specifically occupied with Mn2+ ions by blocking the high-affinity metal binding site 2 (B-site) either with Co2+ ions, resulting in a catalytically active enzyme, or with Cd2+ or Pb2+ ions yielding an inactive enzyme species. Incubation of both the Co2+/Mn2+- and the Cd2+/Mn2+-XylI with the acyclic inhibitor xylitol revealed EPR spectra with well-resolved hyperfine patterns, but with increased zero field splitting (zfs) parameter D compared to the spectra without inhibitor. D was estimated by spectral simulation of the central --1/2<-->1/2 fine structure transition. D values of 33 and 50 mT were obtained for the Co2+/Mn2+-XylI and the Cd2+/Mn2+-XylI samples, respectively. These results indicate direct interaction of the xylitol with the Mn2+ in the A-site. More drastic changes are observed with the substrates D-xylose and D-glucose and with the cyclic inhibitors 5-thio-alpha-D-glucose and 2-desoxy-D-glucose. For Cd2+/Mn2+-XylI, the EPR spectra with substrates and cyclic inhibitors are similar to each other but different from the spectra with the acylic inhibitor xylitol. They exhibit well-resolved line patterns with a relative large zero field splitting, which was estimated to be in the range of D = 65-85 mT in the various complexes. Binding of substrates or of cyclic inhibitors to the Co2+/ Mn2+-XylI yields EPR spectra without resolved hyperfine interactions, indicative of dipolar interaction between the two paramagnetic metal ions. This can be explained with a decrease in the metal-metal distance. Furthermore, the EPR data strongly suggest that the corresponding metal ion movement is induced by binding of the cyclic conformation of either substrates or cyclic inhibitors and not by binding of the extended form of the sugars.
通过X波段和Q波段频率的电子顺磁共振光谱研究了底物和抑制剂与D -木糖异构酶(XylI)双核活性中心的Mn2 +离子之间的相互作用。通过用Co2 +离子阻断高亲和力金属结合位点2(B位点),使金属结合位点1(A位点)特异性地被Mn2 +离子占据,从而产生具有催化活性的酶,或者用Cd2 +或Pb2 +离子产生无活性的酶物种。将Co2 + / Mn2 + -XylI和Cd2 + / Mn2 + -XylI与无环抑制剂木糖醇一起孵育,得到的电子顺磁共振光谱具有分辨率良好的超精细模式,但与没有抑制剂的光谱相比,零场分裂(zfs)参数D增加。通过对中心 - 1/2 <--> 1/2精细结构跃迁的光谱模拟来估计D。Co2 + / Mn2 + -XylI和Cd2 + / Mn2 + -XylI样品的D值分别为33和50 mT。这些结果表明木糖醇与A位点中的Mn2 +直接相互作用。用底物D -木糖和D -葡萄糖以及环状抑制剂5 -硫代-α-D -葡萄糖和2 -脱氧-D -葡萄糖观察到更剧烈的变化。对于Cd2 + / Mn2 + -XylI,含有底物和环状抑制剂的电子顺磁共振光谱彼此相似,但与含有无环抑制剂木糖醇的光谱不同。它们表现出具有相对大的零场分裂的分辨率良好的线型,在各种配合物中估计在D = 65 - 85 mT的范围内。底物或环状抑制剂与Co2 + / Mn + -XylI的结合产生没有分辨出超精细相互作用的电子顺磁共振光谱,表明两个顺磁性金属离子之间存在偶极相互作用。这可以用金属 - 金属距离的减小来解释。此外,电子顺磁共振数据强烈表明,相应的金属离子运动是由底物或环状抑制剂的环状构象的结合诱导的,而不是由糖的延伸形式的结合诱导的。