Ondrias M R, Rousseau D L, Shelnutt J A, Simon S R
Biochemistry. 1982 Jul 6;21(14):3428-37. doi: 10.1021/bi00257a028.
Quaternary-structure-induced differences in both the high- and low-frequency regions of the resonance Raman spectrum of the heme have been detected in a variety of hemoglobins. These differences may be the result of (1) changes in the amino acid sequence, induced by genetic and chemical modifications, and (2) alterations in the quaternary structure. For samples in solution in low ionic strength buffers, differences in the 1357-cm-1 line (an electron-density-sensitive vibrational mode) correlate with differences in the 216-cm-1 line (the iron-histidine stretching mode). Thus, changes in the iron-histidine bond and changes in the pi-electron density of the porphyrin depend upon a common heme-globin interaction. The quaternary-structure-induced changes in the vibrational modes associated with the heme demonstrate that there is extensive communication between the heme and the globin and impact on models for the energetics of cooperativity. The local interactions of the iron-histidine mode are energetically small and destabilize the deoxy heme in the T structure with respect to the R structure. Therefore, these interactions must be larger in the ligated protein than in the deoxy protein to obtain a negative free energy of cooperativity. Additionally, our data imply that the deprotonation of the proximal histidine does not play a major role in the energetics of cooperativity. On the other hand, models for cooperativity that require conformational changes in the iron-histidine bond or direct interaction between the porphyrin and the protein are qualitatively consistent with the observed variation of heme electronic structure in concert with protein quaternary structure.
在多种血红蛋白中均检测到了血红素共振拉曼光谱高频和低频区域因四级结构引起的差异。这些差异可能是由以下原因导致的:(1)遗传和化学修饰引起的氨基酸序列变化;(2)四级结构的改变。对于在低离子强度缓冲液中处于溶液状态的样品,1357 cm⁻¹谱线(一种对电子密度敏感的振动模式)的差异与216 cm⁻¹谱线(铁 - 组氨酸伸缩模式)的差异相关。因此,铁 - 组氨酸键的变化以及卟啉π电子密度的变化取决于血红素 - 珠蛋白之间的共同相互作用。与血红素相关的振动模式中由四级结构引起的变化表明,血红素与珠蛋白之间存在广泛的相互作用,这对协同作用的能量学模型产生了影响。铁 - 组氨酸模式的局部相互作用在能量上较小,相对于R结构而言,它会使T结构中的脱氧血红素不稳定。因此,为了获得协同作用的负自由能,这些相互作用在结合蛋白中必须比在脱氧蛋白中更大。此外,我们的数据表明,近端组氨酸的去质子化在协同作用的能量学中并不起主要作用。另一方面,需要铁 - 组氨酸键发生构象变化或卟啉与蛋白质之间直接相互作用的协同作用模型,在定性上与观察到的血红素电子结构随蛋白质四级结构变化的情况一致。