首页> 美国卫生研究院文献>The Journal of Physiology >Quantitative interactions between the A-type K+ current and inositol trisphosphate receptors regulate intraneuronal Ca2+ waves and synaptic plasticity
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Quantitative interactions between the A-type K+ current and inositol trisphosphate receptors regulate intraneuronal Ca2+ waves and synaptic plasticity

机译:A型K +电流与肌醇三磷酸受体之间的定量相互作用调节神经元内Ca2 +波和突触可塑性

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摘要

The A-type potassium current has been implicated in the regulation of several physiological processes. Here, we explore a role for the A-type potassium current in regulating the release of calcium through inositol trisphosphate receptors (InsP3R) that reside on the endoplasmic reticulum (ER) of hippocampal pyramidal neurons. To do this, we constructed morphologically realistic, conductance-based models equipped with kinetic schemes that govern several calcium signalling modules and pathways, and constrained the distributions and properties of constitutive components by experimental measurements from these neurons. Employing these models, we establish a bell-shaped dependence of calcium release through InsP3Rs on the density of A-type potassium channels, during the propagation of an intraneuronal calcium wave initiated through established protocols. Exploring the sensitivities of calcium wave initiation and propagation to several underlying parameters, we found that ER calcium release critically depends on dendritic diameter and that wave initiation occurred at branch points as a consequence of a high surface area to volume ratio of oblique dendrites. Furthermore, analogous to the role of A-type potassium channels in regulating spike latency, we found that an increase in the density of A-type potassium channels led to increases in the latency and the temporal spread of a propagating calcium wave. Next, we incorporated kinetic models for the metabotropic glutamate receptor (mGluR) signalling components and a calcium-controlled plasticity rule into our model and demonstrate that the presence of mGluRs induced a leftward shift in a Bienenstock–Cooper–Munro-like synaptic plasticity profile. Finally, we show that the A-type potassium current could regulate the relative contribution of ER calcium to synaptic plasticity induced either through 900 pulses of various stimulus frequencies or through theta burst stimulation. Our results establish a novel form of interaction between active dendrites and the ER membrane, uncovering a powerful mechanism that could regulate biophysical/biochemical signal integration and steer the spatiotemporal spread of signalling microdomains through changes in dendritic excitability.
机译:A型钾电流与几种生理过程的调节有关。在这里,我们探讨了A型钾电流在调节通过肌醇三磷酸受体(InsP3R)释放钙的作用,肌醇三磷酸受体位于海马锥体神经元的内质网(ER)。为此,我们构建了基于形态学,基于电导的模型,该模型配备了控制多个钙信号传导模块和途径的动力学方案,并通过来自这些神经元的实验测量来约束组成成分的分布和性质。利用这些模型,我们在通过既定规程引发的神经内钙波的传播过程中,建立了通过InsP3Rs释放钙的钟形依赖性对A型钾通道的密度。探索钙波引发和传播对几个基本参数的敏感性,我们发现内质网钙的释放主要取决于树突直径,并且由于斜率大的表面积与体积之比,波引发发生在分支点。此外,类似于A型钾通道在调节突波潜伏期中的作用,我们发现A型钾通道密度的增加会导致潜伏期的增加和传播钙波的时间扩散。接下来,我们将代谢型谷氨酸受体(mGluR)信号组件的动力学模型和钙控制的可塑性规则纳入我们的模型,并证明mGluR的存在在Bienenstock-Cooper-Munro样突触可塑性分布图中引起了向左移动。最后,我们表明,A型钾电流可以调节ER钙对通过各种刺激频率的900个脉冲或通过theta爆发刺激引起的突触可塑性的相对贡献。我们的结果建立了活性树突与ER膜之间相互作用的一种新型形式,揭示了一种强大的机制,可以调节生物物理/生化信号的整合,并通过树突兴奋性的变化来控制信号微域的时空传播。

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