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首页> 外文期刊>PLoS Computational Biology >Inferring Neuronal Dynamics from Calcium Imaging Data Using Biophysical Models and Bayesian Inference
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Inferring Neuronal Dynamics from Calcium Imaging Data Using Biophysical Models and Bayesian Inference

机译:使用生物物理模型和贝叶斯推理从钙成像数据推断神经元动力学。

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Author Summary Calcium imaging of single neurons enables the indirect observation of neuronal dynamics, for example action potential firing. In contrast to the precise timing of spike trains, the calcium trace is temporally rather smeared and measured as a fluorescence trace. Consequently, several methods have been proposed to reconstruct spikes from calcium imaging data. However, a common feature of these methods is that they are not based on the biophysics of how neurons fire spikes and bursts. We propose to introduce well-established biophysical models to create a direct link between neuronal dynamics, e.g. the membrane potential, and fluorescence traces. Using both synthetic and experimental data, we show that this approach not only provides a robust and accurate spike reconstruction but also a reliable inference about the biophysically relevant parameters and variables. This enables novel ways of analyzing calcium imaging experiments in terms of the underlying biophysical quantities.
机译:作者摘要单个神经元的钙成像可间接观察神经元动力学,例如动作电位放电。与尖峰序列的精确计时相反,钙迹线在时间上会被拖尾并测量为荧光迹线。因此,已经提出了几种从钙成像数据重建尖峰的方法。但是,这些方法的共同特征是它们不是基于神经元如何发射尖峰和爆发的生物物理学。我们建议引入公认的生物物理模型,以在神经元动力学之间建立直接联系,例如膜电位和荧光痕迹。使用合成和实验数据,我们表明该方法不仅提供了鲁棒且准确的尖峰重建,而且还提供了有关生物物理相关参数和变量的可靠推断。这使得根据潜在的生物物理量分析钙成像实验的新颖方法成为可能。

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