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血红蛋白的结构、动力学与反应活性

Structure, dynamics, and reactivity in hemoglobin.

作者信息

Friedman J M

出版信息

Science. 1985 Jun 14;228(4705):1273-80. doi: 10.1126/science.4001941.

Abstract

The static structure of hemoglobin and its functional properties are very well characterized. It is still not known how energy is stored and used within the structure of the protein to promote function and functional diversity. An essential part of this question is understanding the mechanism through which the overall protein structure (quaternary structure) couples to the local environment about the oxygen binding sites. Time-resolved resonance Raman spectroscopy has been used to probe the vibrational degrees of the freedom of the binding site as a function of protein structure. Comparison of the spectra from both equilibrium and transient forms of deoxy hemoglobin from a variety of mammalian, reptilian, and fish hemoglobins reveals that for each quaternary structure there exist two tertiary states stabilized by the presence or absence of an iron-bound ligand. Pulse-probe Raman experiments show that for photodissociated, ligated hemoglobins the local tertiary structure relaxes at a solution-dependent rate extending from tens of nanoseconds to microseconds. In this local environment, the linkage between the iron and the proximal histidine proves to be the single observed structural feature that responds in a systematic and substantial manner to structural changes in the protein. The additional finding of a correlation between the frequency of the iron-proximal histidine stretching motion (nu Fe-His) and various parameters of ligand reactivity, including geminate recombination, implicates the associated localized structural element in the mechanism of protein control of ligand binding. On the basis of these and related finds, a model is presented to account for both coarse and fine control of ligand binding by the protein structure.

摘要

血红蛋白的静态结构及其功能特性已得到很好的表征。目前仍不清楚能量是如何在蛋白质结构中储存和利用以促进功能及功能多样性的。这个问题的一个关键部分是理解整个蛋白质结构(四级结构)与氧结合位点周围局部环境耦合的机制。时间分辨共振拉曼光谱已被用于探测结合位点的振动自由度作为蛋白质结构的函数。对来自多种哺乳动物、爬行动物和鱼类血红蛋白的脱氧血红蛋白的平衡态和瞬态形式的光谱进行比较,结果表明,对于每种四级结构,存在两种由铁结合配体的存在或不存在而稳定的三级状态。脉冲探测拉曼实验表明,对于光解离的、结合配体的血红蛋白,局部三级结构以从几十纳秒到微秒不等的溶液依赖速率弛豫。在这种局部环境中,铁与近端组氨酸之间的连接被证明是唯一观察到的对蛋白质结构变化有系统且显著响应的结构特征。铁 - 近端组氨酸拉伸运动频率(νFe - His)与包括双分子复合在内的配体反应性的各种参数之间存在相关性这一额外发现,表明相关的局部结构元件参与了蛋白质对配体结合的控制机制。基于这些及相关发现,提出了一个模型来解释蛋白质结构对配体结合的粗调和微调。

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