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Half-site reactivity, negative cooperativity, and positive cooperativity: quantitative considerations of a plausible model

机译:半站点反应性,负协作性和正协作性:合理模型的定量考虑

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The nature of cooperative allosteric interactions has been the source of controversy since the ground-breaking studies of oxygen binding to hemoglobin. Until recently, quantitative examples of a model based on the inherent symmetry and asymmetry of oligomeric proteins have been lacking. This laboratory has used the phenolic ligand binding characteristics of the insulin hexamer to develop the first quantitative model for a symmetry-asymmetry-based cooperativity mechanism. The insulin hexamer possesses positive and negative heterotropic and homotropic interactions involving two classes of sites. In this study, we explore the effects of heterotropic interactions between these sites. We show that application of the pairwise structural asymmetry theory of Seydoux, Malhotra, and Bernhard (SMB) gives excellent agreement between the ligand binding behavior and X-ray crystal structure data. Furthermore, by comparing experimental data with computer simulations, we show that the insulin hexamer can be described by a three-state SMB model involving two positive homotropic cooperative transitions linked by a negative homotropic interaction. The first transition, T3T3' right harpoon over left harpoon T3oR3o, with allosteric constant LoA = [T3T3']/[T3oR3o] and ligand dissociation constant KRo consists of a positive cooperative change from high to low symmetry that results in "half-site reactivity". The second transition, T3oR3o right harpoon over left harpoon R3R3', with allosteric constant LoB = [T3oR3o]/[R3R3'] and ligand dissociation constant KR is a change from low to high symmetry, which is also a positive cooperative process. Treatment of the two transitions as concerted and interconnected processes allows derivation of an equation for the fraction of R-state. Using this equation, the effects of changes in the four physical parameters, LoA, LoB, KR, and KRo, on the ligand binding properties of the insulin hexamer are quantitatively described.
机译:自从氧与血红蛋白结合的开创性研究以来,协作性变构相互作用的性质一直是争议的源头。直到最近,仍缺乏基于寡聚蛋白的固有对称性和不对称性的模型的定量例子。该实验室已利用胰岛素六聚体的酚类配体结合特性为基于对称性-不对称性的协同机制建立了第一个定量模型。胰岛素六聚体具有涉及两类位点的正性和负性各向同性和负性相互作用。在这项研究中,我们探索了这些站点之间的异质性相互作用的影响。我们表明,Seydoux,Malhotra和Bernhard(SMB)的成对结构不对称理论的应用在配体结合行为和X射线晶体结构数据之间给出了极好的一致性。此外,通过将实验数据与计算机模拟进行比较,我们表明胰岛素六聚体可以通过三态SMB模型来描述,该模型涉及通过负向同性相互作用链接的两个正向同性协作跃迁。第一个过渡,T3T3'右鱼叉超过左鱼叉T3oR3o,变构常数LoA = [T3T3'] / [T3oR3o]和配体解离常数KRo由从高对称到低对称的正协同变化组成,导致“半位反应性” ”。第二个过渡是T3oR3o右鱼叉超过左鱼叉R3R3',其变构常数LoB = [T3oR3o] / [R3R3'],配体解离常数KR从低对称变为高对称,这也是一个积极的合作过程。将这两个过渡视为协调一致的过程,可以得出R状态分数的方程式。使用该方程式,定量描述了四个物理参数LoA,LoB,KR和KRo的变化对胰岛素六聚体的配体结合特性的影响。

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