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A Statistical Thermodynamic Model for Ligands Interacting With Ion Channels: Theoretical Model and Experimental Validation of the KCNQ2 Channel

机译:配体与离子通道相互作用的统计热力学模型:KCNQ2通道的理论模型和实验验证

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Ion channels are important therapeutic targets, and their pharmacology is becoming increasingly important. However, knowledge of the mechanism of interaction of the activators and ion channels is still limited due to the complexity of the mechanisms. A statistical thermodynamic model has been developed in this study to characterize the cooperative binding of activators to ion channels. By fitting experimental concentration-response data, the model gives eight parameters for revealing the mechanism of an activator potentiating an ion channel, i.e., the binding affinity ( K _( A )), the binding cooperative coefficients for two to four activator molecules interacting with one channel (γ, μ, and ν), and the channel conductance coefficients for four activator binding configurations of the channel ( a, b, c , and d ). Values for the model parameters and the mechanism underlying the interaction of ztz240, a proven KCNQ2 activator, with the wild-type channel have been obtained and revealed by fitting the concentration-response data of this activator potentiating the outward current amplitudes of KCNQ2. With these parameters, our model predicted an unexpected bi-sigmoid concentration-response curve of ztz240 activation of the WT-F137A mutant heteromeric channel that was in good agreement with the experimental data determined in parallel in this study, lending credence to the assumptions on which the model is based and to the model itself. Our model can provide a better fit to the measured data than the Hill equation and estimates the binding affinity, as well as the cooperative coefficients for the binding of activators and conductance coefficients for binding states, which validates its use in studying ligand-channel interaction mechanisms.
机译:离子通道是重要的治疗靶标,其药理作用变得越来越重要。然而,由于机理的复杂性,对活化剂和离子通道相互作用的机理的知识仍然有限。在这项研究中已经开发出统计热力学模型来表征活化剂与离子通道的协同结合。通过拟合实验浓度响应数据,该模型给出了八个参数,用于揭示激活剂增强离子通道的机理,即结合亲和力(K _(A)),与之相互作用的二至四个激活剂分子的结合协同系数。一个通道(γ,μ和ν),以及通道(a,b,c和d)的四种激活剂结合构型的通道电导系数。已经获得了模型参数的值以及作为基础的ztz240(一种成熟的KCNQ2激活剂)与野生型通道相互作用的机理的基础,并通过拟合该激活剂的浓度响应数据来增强KCNQ2的向外电流振幅,从而揭示了该参数。利用这些参数,我们的模型预测了WT-F137A突变体异源通道的ztz240激活的意料之外的双S形浓度响应曲线,与本研究中并行确定的实验数据高度吻合,为以下假设提供了依据:该模型基于模型本身。我们的模型可以比Hill方程更好地拟合测量数据,并估计结合亲和力以及激活剂结合的协同系数和结合态的电导系数,从而验证了其在研究配体-通道相互作用机制中的应用。

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