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变构模型中血红蛋白协同氧结合的自由能变化和隐含分量。

Free energy changes and components implicit in the MWC allosteric model for the cooperative oxygen binding of hemoglobin.

机构信息

Department of Biochemistry and Molecular Biology, University of Maryland School of Medicine, Baltimore, Maryland 21201, USA.

出版信息

Biochemistry. 2013 Jun 18;52(24):4149-56. doi: 10.1021/bi400319c. Epub 2013 Jun 10.

Abstract

Hill's plots of oxygen binding isotherms reveal the presence of a transition between two different oxygen affinities at the beginning and end of the isotherm. They correspond to the two conformations anticipated by the MWC model, namely, the T and R conformations at the beginning and end of oxygen binding, when the lower affinity of the T form develops into the higher affinity of the R form. The difference between the binding Gibbs free energy changes of the two affinities (Δ G(L)) is the free energy of binding cooperativity. Notably, Δ G(L) is positive in favor of the T form, which moves to a higher energy level upon oxygen release. Osmotic stress reveals a higher volume/surface ratio of deoxyhemoglobin, with a positive Δ G(W) also in favor of the T form. An increasing protein concentration shifts the isotherms to the right, indicating the formation of intermediate polymeric forms. The enthalpy of the intermediates shows a strong absorption of heat at the third oxygenation step because of polymer formation with quinary, and higher-order, structures. The disassembly of intermediate polymers releases energy with a negative Δ G that compensates and allows the positive values of Δ G(L). High-energy polymers are the barrier preventing the relaxation of the T and R conformations into one another. The MWC allosteric model is the best justification of oxygen binding cooperativity.

摘要

希尔斯(Hill)的氧结合等温线图揭示了在等温线的开始和结束处存在两种不同氧亲和力之间的转变。它们对应于 MWC 模型所预期的两种构象,即在氧结合的开始和结束时的 T 和 R 构象,此时 T 构象的较低亲和力发展为 R 构象的较高亲和力。两种亲和力之间的结合吉布斯自由能变化的差异(ΔG(L))是结合协同性的自由能。值得注意的是,ΔG(L)为正,有利于 T 构象,T 构象在释放氧气时会移动到更高的能级。渗透应激揭示脱氧血红蛋白的体积/表面积比更高,正的ΔG(W)也有利于 T 构象。蛋白质浓度的增加会使等温线向右移动,表明形成了中间聚合形式。中间产物的焓在第三个氧合步骤显示出强烈的吸热,因为与五进制和更高阶结构形成聚合物。中间聚合物的解体释放能量,具有负的ΔG,从而补偿并允许ΔG(L)为正。高能聚合物是防止 T 和 R 构象彼此松弛的障碍。MWC 变构模型是氧结合协同性的最佳解释。

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本文引用的文献

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Double strand packing in hemoglobin S fibers.血红蛋白S纤维中的双链堆积。
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