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血红蛋白的三级双态变构模型。

A tertiary two-state allosteric model for hemoglobin.

作者信息

Henry Eric R, Bettati Stefano, Hofrichter James, Eaton William A

机构信息

Laboratory of Chemical Physics, Building 5, National Institute of Diabetes, Digestive and Kidney Diseases, National Institutes of Health, Bethesda, MD 20892-0520, USA.

出版信息

Biophys Chem. 2002 Jul 10;98(1-2):149-64. doi: 10.1016/s0301-4622(02)00091-1.

Abstract

The two-state allosteric model of Monod, Wyman, and Changeux (MWC) provides an excellent description of homotropic effects in a vast array of equilibrium and kinetic measurements on cooperative ligand binding by hemoglobin. However, in contrast to experimental observations, the model does not allow for alteration of the ligand affinity of the T quaternary structure by allosteric effectors. This failure to explain heterotropic effects has been appreciated for over 30 years, and it has been generally assumed to result from tertiary conformational changes in the absence of a quaternary change. Here we explore a model that preserves the essential MWC idea that binding without a quaternary conformational change is non-cooperative, but where tertiary conformations of individual subunits play the primary role instead of the quaternary conformations. In this model, which we call the 'tertiary two-state (TTS) model', the two affinity states correspond to two tertiary conformations of individual subunits rather than the two quaternary conformations of the MWC two-state allosteric model. Ligation and the R quaternary structure bias the subunit population toward the high affinity tertiary conformation, while deligation and the T quaternary structure favor the low affinity tertiary conformation. We show that the model is successful in quantitatively explaining a demanding set of kinetic data from nanosecond carbon monoxide photodissociation experiments at times longer than approximately 1 micros. Better agreement between the model and the submicrosecond kinetic data may result from detailed considerations of the distribution and dynamics of conformational substates of the two tertiary conformations. The model is consistent with the results of solution, gel, and single crystal oxygen binding studies, but underestimates the population of doubly-liganded molecules determined in low-temperature electrophoresis experiments.

摘要

莫诺德(Monod)、怀曼(Wyman)和尚热(Changeux)提出的两态别构模型(MWC),出色地描述了血红蛋白协同配体结合的大量平衡和动力学测量中的同促效应。然而,与实验观察结果相反,该模型不允许别构效应剂改变T四级结构的配体亲和力。这种无法解释异促效应的情况已被认识超过30年,人们普遍认为这是由于在没有四级变化的情况下发生三级构象变化所致。在此,我们探索一种模型,该模型保留了MWC的基本观点,即没有四级构象变化的结合是非协同的,但单个亚基的三级构象起主要作用而非四级构象。在这个我们称为“三级两态(TTS)模型”的模型中,两种亲和力状态对应于单个亚基的两种三级构象,而不是MWC两态别构模型的两种四级构象。配体结合和R四级结构使亚基群体偏向高亲和力的三级构象,而去配体和T四级结构则有利于低亲和力的三级构象。我们表明,该模型成功地定量解释了来自纳秒级一氧化碳光解离实验中约1微秒以上时间的一组严格的动力学数据。该模型与溶液、凝胶和单晶氧结合研究的结果一致,但低估了低温电泳实验中确定的双配体分子的数量。

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