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一种用于实现非线性钙动力学多尺度建模的谷氨酸能棘突模型。

A Glutamatergic Spine Model to Enable Multi-Scale Modeling of Nonlinear Calcium Dynamics.

作者信息

Hu Eric, Mergenthal Adam, Bingham Clayton S, Song Dong, Bouteiller Jean-Marie, Berger Theodore W

机构信息

Department of Biomedical Engineering, University of Southern California, Los Angeles, CA, United States.

出版信息

Front Comput Neurosci. 2018 Jul 27;12:58. doi: 10.3389/fncom.2018.00058. eCollection 2018.

Abstract

In synapses, calcium is required for modulating synaptic transmission, plasticity, synaptogenesis, and synaptic pruning. The regulation of calcium dynamics within neurons involves cellular mechanisms such as synaptically activated channels and pumps, calcium buffers, and calcium sequestrating organelles. Many experimental studies tend to focus on only one or a small number of these mechanisms, as technical limitations make it difficult to observe all features at once. Computational modeling enables incorporation of many of these properties together, allowing for more complete and integrated studies. However, the scale of existing detailed models is often limited to synaptic and dendritic compartments as the computational burden rapidly increases when these models are integrated in cellular or network level simulations. In this article we present a computational model of calcium dynamics at the postsynaptic spine of a CA1 pyramidal neuron, as well as a methodology that enables its implementation in multi-scale, large-scale simulations. We first present a mechanistic model that includes individually validated models of various components involved in the regulation of calcium at the spine. We validated our mechanistic model by comparing simulated calcium levels to experimental data found in the literature. We performed additional simulations with the mechanistic model to determine how the simulated calcium activity varies with respect to presynaptic-postsynaptic stimulation intervals and spine distance from the soma. We then developed an input-output (IO) model that complements the mechanistic calcium model and provide a computationally efficient representation for use in larger scale modeling studies; we show the performance of the IO model compared to the mechanistic model in terms of accuracy and speed. The models presented here help achieve two objectives. First, the mechanistic model provides a comprehensive platform to describe spine calcium dynamics based on individual contributing factors. Second, the IO model is trained on the main dynamical features of the mechanistic model and enables nonlinear spine calcium modeling on the cell and network level simulation scales. Utilizing both model representations provide a multi-level perspective on calcium dynamics, originating from the molecular interactions at spines and propagating the effects to higher levels of activity involved in network behavior.

摘要

在突触中,钙对于调节突触传递、可塑性、突触发生和突触修剪是必需的。神经元内钙动力学的调节涉及细胞机制,如突触激活的通道和泵、钙缓冲剂以及钙隔离细胞器。许多实验研究往往只关注这些机制中的一种或少数几种,因为技术限制使得难以同时观察到所有特征。计算建模能够将许多这些特性整合在一起,从而进行更完整和综合的研究。然而,现有详细模型的规模通常仅限于突触和树突区域,因为当这些模型集成到细胞或网络层面的模拟中时,计算负担会迅速增加。在本文中,我们提出了一个CA1锥体神经元突触后棘突处钙动力学的计算模型,以及一种能够在多尺度、大规模模拟中实现该模型的方法。我们首先提出了一个机制模型,该模型包括对参与棘突处钙调节的各种成分的单独验证模型。我们通过将模拟的钙水平与文献中的实验数据进行比较,验证了我们的机制模型。我们使用该机制模型进行了额外的模拟,以确定模拟的钙活性如何随突触前 - 突触后刺激间隔以及棘突与胞体的距离而变化。然后,我们开发了一个输入 - 输出(IO)模型,该模型补充了机制钙模型,并为大规模建模研究提供了一种计算效率高的表示方式;我们展示了IO模型与机制模型相比在准确性和速度方面的性能。这里提出的模型有助于实现两个目标。首先,机制模型提供了一个基于个体贡献因素来描述棘突钙动力学的综合平台。其次,IO模型是根据机制模型的主要动态特征进行训练的,并能够在细胞和网络层面模拟尺度上进行非线性棘突钙建模。利用这两种模型表示方式,可以从棘突处的分子相互作用出发,对钙动力学提供一个多层次的视角,并将这些效应传播到参与网络行为的更高层次的活动中。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/861f/6072875/dc6f2e975e8a/fncom-12-00058-g0001.jpg

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