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Impact of neuronal heterogeneity on correlated colored noise-induced synchronization

机译:神经元异质性对相关彩色噪声诱导的同步的影响

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摘要

Synchronization plays an important role in neural signal processing and transmission. Many hypotheses have been proposed to explain the origin of neural synchronization. In recent years, correlated noise-induced synchronization has received support from many theoretical and experimental studies. However, many of these prior studies have assumed that neurons have identical biophysical properties and that their inputs are well modeled by white noise. In this context, we use colored noise to induce synchronization between oscillators with heterogeneity in both phase-response curves and frequencies. In the low noise limit, we derive novel analytical theory showing that the time constant of colored noise influences correlated noise-induced synchronization and that oscillator heterogeneity can limit synchronization. Surprisingly, however, heterogeneous oscillators may synchronize better than homogeneous oscillators given low input correlations. We also find resonance of oscillator synchronization to colored noise inputs when firing frequencies diverge. Collectively, these results prove robust for both relatively high noise regimes and when applied to biophysically realistic spiking neuron models, and further match experimental recordings from acute brain slices.
机译:同步在神经信号处理和传输中起重要作用。已经提出了许多假设来解释神经同步的起源。近年来,相关的噪声诱发同步已获得许多理论和实验研究的支持。但是,许多这些先前的研究都假定神经元具有相同的生物物理特性,并且它们的输入已被白噪声很好地建模。在这种情况下,我们使用有色噪声在相位响应曲线和频率均具有异质性的振荡器之间引起同步。在低噪声限制下,我们得出了新颖的分析理论,该理论表明,有色噪声的时间常数会影响相关的噪声诱发的同步,并且振荡器的异质性会限制同步。但是,令人惊讶的是,在低输入相关性的情况下,异构振荡器的同步性可能优于同类振荡器。当发射频率发散时,我们还发现振荡器同步对彩色噪声输入产生谐振。总的来说,这些结果证明了在相对较高的噪声状态下以及将其应用于生物物理逼真的尖峰神经元模型时都具有鲁棒性,并且进一步匹配了急性脑切片的实验记录。

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