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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断推断钙成像数据的神经元动力学

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摘要

Calcium imaging has been used as a promising technique to monitor the dynamic activity of neuronal populations. However, the calcium trace is temporally smeared which restricts the extraction of quantities of interest such as spike trains of individual neurons. To address this issue, spike reconstruction algorithms have been introduced. One limitation of such reconstructions is that the underlying models are not informed about the biophysics of spike and burst generations. Such existing prior knowledge might be useful for constraining the possible solutions of spikes. Here we describe, in a novel Bayesian approach, how principled knowledge about neuronal dynamics can be employed to infer biophysical variables and parameters from fluorescence traces. By using both synthetic and in vitro recorded fluorescence traces, we demonstrate that the new approach is able to reconstruct different repetitive spiking and/or bursting patterns with accurate single spike resolution. Furthermore, we show that the high inference precision of the new approach is preserved even if the fluorescence trace is rather noisy or if the fluorescence transients show slow rise kinetics lasting several hundred milliseconds, and inhomogeneous rise and decay times. In addition, we discuss the use of the new approach for inferring parameter changes, e.g. due to a pharmacological intervention, as well as for inferring complex characteristics of immature neuronal circuits.
机译:钙成像已被用作监测神经元种群动态活动的有前途的技术。然而,钙迹线在时间上被涂抹,这限制了感兴趣量的提取,例如单个神经元的尖峰序列。为了解决这个问题,引入了尖峰重建算法。这种重建的局限性在于,底层模型无法得知尖峰和爆发世代的生物物理学。这些现有的先验知识可能对约束尖峰的可能解决方案很有用。在这里,我们以一种新颖的贝叶斯方法描述了如何利用关于神经元动力学的原理知识来从荧光迹线推断生物物理变量和参数。通过使用合成的和体外记录的荧光迹线,我们证明了该新方法能够以准确的单个峰值分辨率重建不同的重复性加标和/或猝发模式。此外,我们表明,即使荧光迹线比较嘈杂,或者荧光瞬变显示持续数百毫秒的缓慢上升动力学以及不均匀的上升和衰减时间,仍可以保持新方法的高推断精度。此外,我们讨论了使用新方法来推断参数更改的情况,例如由于药理学干预,以及用于推断未成熟神经元回路的复杂特征。

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