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配体结合时血红蛋白的三级结构变化。其在协同机制中的作用。

Hemoglobin tertiary structural change on ligand binding. Its role in the co-operative mechanism.

作者信息

Gelin B R, Lee A W, Karplus M

出版信息

J Mol Biol. 1983 Dec 25;171(4):489-559. doi: 10.1016/0022-2836(83)90042-6.

Abstract

Analysis of the tertiary structural alterations in hemoglobin induced by ligand binding demonstrates that an allosteric core composed of the heme, histidine F8, the FG corner and part of the F-helix plays an essential role in co-operativity. This conclusion is based on structural and spectroscopic data and theoretical studies of hemoglobin chains. The methodology employed in the calculations is presented with details of the empirical energy function. Energy minimized structures of the unliganded hemoglobin chains, which serve as reference systems for the analysis, are described. To determine the structural changes induced by ligand binding, the effects of Fe--N bond shortening and of heme translation and tilting perturbations are examined. Energy minimization in the presence of the perturbations serves to provide information concerning the globin structural modifications produced by them. The validity of the results is supported by comparisons with the X-ray data of Anderson, Pulsinelli, Baldwin and Chothia on tertiary changes in the hemoglobin subunits. Internal to the allosteric core, there appear to be two stable positions for its elements: one of these corresponds to the liganded and the other to the unliganded species. The unliganded geometry fits without strain into the deoxy tetramer, while the liganded one fits without strain into the oxy tetramer. On ligation of a subunit in the deoxy tetramer, the structural changes within the allosteric core are in the direction of those found in going from the unliganded deoxy to the liganded oxy system, although they are reduced by the presence of constraints due to the other subunits in the deoxy tetramer. In addition, the quaternary constraints in the deoxy tetramer prevent the large overall displacement of the allosteric core that occurs in the transition to the liganded oxy tetramer. The coupling between the changes internal to the allosteric core, produced on ligation and the overall displacement of the core that accompanies the quaternary transition, is an essential element of the co-operative mechanism. As shown in previous work (Gelin & Karplus, 1977), the proximal histidine serves as the link between the position of the heme and the F-helix; the asymmetric orientation of the histidine in the deoxy structure, coupled with contributions from other heme-protein interactions, appears to initiate the tertiary structural changes induced by ligand binding. The reduced oxygen affinity of hemoglobin results not from tension on the heme in the unliganded structure (there is none) but instead from strain in the liganded subunit of the tetramer within the deoxy quaternary structure.(ABSTRACT TRUNCATED AT 400 WORDS)

摘要

对配体结合诱导的血红蛋白三级结构改变的分析表明,由血红素、组氨酸F8、FG转角和F螺旋的一部分组成的变构核心在协同性中起关键作用。这一结论基于血红蛋白链的结构和光谱数据以及理论研究。文中详细介绍了计算中采用的方法以及经验能量函数的细节。描述了未结合配体的血红蛋白链的能量最小化结构,这些结构用作分析的参考系统。为了确定配体结合引起的结构变化,研究了铁 - 氮键缩短以及血红素平移和倾斜扰动的影响。在存在扰动的情况下进行能量最小化,以提供有关由它们产生的珠蛋白结构修饰的信息。通过与安德森、普尔西内利、鲍德温和乔西亚关于血红蛋白亚基三级变化的X射线数据进行比较,支持了结果的有效性。在变构核心内部,其元素似乎有两个稳定位置:其中一个对应于结合配体的状态,另一个对应于未结合配体的状态。未结合配体的几何结构能无应变地适配到脱氧四聚体中,而结合配体的几何结构能无应变地适配到氧合四聚体中。在脱氧四聚体中一个亚基结合配体时,变构核心内的结构变化朝着从未结合配体的脱氧状态到结合配体的氧合状态的方向进行,尽管由于脱氧四聚体中其他亚基的存在而受到约束,这些变化有所减小。此外,脱氧四聚体中的四级约束阻止了变构核心在向结合配体的氧合四聚体转变时发生的大的整体位移。变构核心内部在结合配体时产生的变化与四级转变伴随的核心整体位移之间的耦合是协同机制的一个基本要素。如先前的工作所示(格林和卡尔普斯,1977年),近端组氨酸充当血红素位置与F螺旋之间的连接;组氨酸在脱氧结构中的不对称取向,加上其他血红素 - 蛋白质相互作用的贡献,似乎引发了配体结合诱导的三级结构变化。血红蛋白降低的氧亲和力不是由于未结合配体结构中血红素上的张力(不存在这种张力),而是由于脱氧四级结构中四聚体结合配体的亚基中的应变。

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