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Inactivating ion channels augment robustness of subthreshold intrinsic response dynamics to parametric variability in hippocampal model neurons

机译:灭活离子通道增强了海马模型神经元对阈值可变性的亚阈内在响应动力学的鲁棒性

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Voltage-gated ion channels play a critical role in regulating neuronal intrinsic response dynamics (IRD). Here, we computationally analysed the roles of the two inactivating subthreshold conductances (A and T), individually and in various combinations with the non-inactivating h conductance, in regulating several physiological IRD measurements in the theta frequency range. We found that the independent presence of a T conductance, unlike that of an h conductance, was unable to sustain an inductive phase lead in the theta frequency range, despite its ability to mediate theta frequency resonance. The A conductance, on the other hand, when expressed independently, acted in a manner similar to a leak conductance with reference to most IRD measurements. Next, analysing the impact of pair-wise coexpression of these channels, we found that the coexpression of the h and T conductances augmented the range of parameters over which they sustained resonance and inductive phase lead. Additionally, coexpression of the A conductance with the h or the T conductance elicited changes in IRD measurements that were similar to those obtained with the expression of a leak conductance with a resonating conductance. Finally, to understand the global sensitivity of IRD measurements to all parameters associated with models expressing all three channels, we generated 100, 000 neuronal models, each built with a unique set of parametric values. We categorized valid models among these by matching their IRD measurements with experimental counterparts, and found that functionally similar models could be achieved even when underlying parameters displayed tremendous variability and exhibited weak pair-wise correlations. Our results suggest that the three prominent subthreshold conductances contribute differently to intrinsic excitability and to phase coding. We postulate that the differential expression and activity-dependent plasticity of these conductances contribute to robustness of subthreshold IRD, whereby response homeostasis is achieved by recruiting several non-unique combinations of these channel parameters.
机译:电压门控离子通道在调节神经元固有反应动力学(IRD)中起关键作用。在这里,我们通过计算分析了两个失活的亚阈值电导(A和T),分别与非失活的h电导结合,在调节theta频率范围内的几个生理IRD测量值中的作用。我们发现,与h电导不同,T电导的独立存在尽管能够介导theta频率共振,却无法维持theta频率范围内的感应相超前。另一方面,相对于大多数IRD测量,A电导单独表示时,其作用类似于泄漏电导。接下来,分析这些通道的成对共表达的影响,我们发现h和T电导的共表达扩大了它们维持共振和感应相超导的参数范围。另外,A电导与h电导或T电导的共表达引起IRD测量值的变化,这类似于通过泄漏电导与共振电导的表达获得的变化。最后,为了了解IRD测量对与表示所有三个通道的模型相关的所有参数的全局敏感性,我们生成了100,000个神经元模型,每个模型都具有一组唯一的参数值。我们通过将它们的IRD测量值与实验对象进行匹配来对其中的有效模型进行了分类,发现即使基础参数显示出巨大的可变性并表现出较弱的成对相关性,也可以实现功能相似的模型。我们的结果表明,三个突出的亚阈电导对内在兴奋性和相位编码的贡献不同。我们假设这些电导的差异表达和活动依赖性可塑性有助于阈下IRD的鲁棒性,从而通过募集这些通道参数的几种非唯一组合来实现反应稳态。

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