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人类血红蛋白协同机制的定量模型

A quantitative model for the cooperative mechanism of human hemoglobin.

作者信息

Johnson M L, Turner B W, Ackers G K

出版信息

Proc Natl Acad Sci U S A. 1984 Feb;81(4):1093-7. doi: 10.1073/pnas.81.4.1093.

Abstract

A quantitative model has been developed for the cooperative oxygenation of human hemoglobin. The model correlates the structural and energetic features of ligand-linked subunit interactions within the tetrameric molecule and the coupling of these interactions to the binding of oxygen and Bohr protons. Recent findings are incorporated regarding (i) the sites of regulatory energy change within the tetrameric molecule, (ii) the nature of the Bohr effect for tetramers and dimers, (iii) the fractional Bohr proton release at each stage of oxygenation, (iv) relative probabilities of binding to the alpha and beta chains within the tetramer, and (v) an extensive data base recently obtained on the linked processes of oxygenation, proton binding, and subunit interactions [Chu, A. H., Turner, B. W. & Ackers, G. K. (1984) Biochemistry 23, 604-617]. Least squares minimization was used to evaluate from these data the free energies for the various processes. A special feature of the model lies in the synchronization of Bohr proton release with changes in quaternary structure. This leads to the striking prediction that a major fraction (as much as 30%) of tetramers are in the oxy quaternary structure after the first oxygen is bound. The model provides a rationale for the essential features of regulatory energy control, and it defines several kinds of additional information that are needed for a more complete understanding of the hemoglobin mechanism.

摘要

已开发出一种用于人类血红蛋白协同氧合作用的定量模型。该模型将四聚体分子内配体连接的亚基相互作用的结构和能量特征,以及这些相互作用与氧和玻尔质子结合的耦合关联起来。纳入了近期关于以下方面的研究结果:(i) 四聚体分子内调节能量变化的位点;(ii) 四聚体和二聚体的玻尔效应的性质;(iii) 氧合作用每个阶段的玻尔质子释放分数;(iv) 四聚体内与α链和β链结合的相对概率;以及(v) 最近获得的关于氧合、质子结合和亚基相互作用的连锁过程的广泛数据库 [Chu, A. H., Turner, B. W. & Ackers, G. K. (1984) Biochemistry 23, 604 - 617]。使用最小二乘法从这些数据中评估各种过程的自由能。该模型的一个特殊之处在于玻尔质子释放与四级结构变化的同步性。这导致了一个惊人的预测,即第一个氧结合后,很大一部分(高达30%)的四聚体处于氧合四级结构。该模型为调节能量控制的基本特征提供了理论依据,并定义了几种为更全面理解血红蛋白机制所需的额外信息。

相似文献

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Structure-specific model of hemoglobin cooperativity.血红蛋白协同作用的结构特异性模型。
Proc Natl Acad Sci U S A. 1983 Dec;80(23):7055-9. doi: 10.1073/pnas.80.23.7055.

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