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首页> 外文期刊>Biophysical Journal >A deconvolution-based method with high sensitivity and temporal resolution for detection of spontaneous synaptic currents in vitro and in vivo
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A deconvolution-based method with high sensitivity and temporal resolution for detection of spontaneous synaptic currents in vitro and in vivo

机译:一种基于反卷积的方法,具有高灵敏度和时间分辨率,可在体内和体外检测自发突触电流

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摘要

Spontaneous postsynaptic currents (PSCs) provide key information about the mechanisms of synaptic transmission and the activity modes of neuronal networks. However, detecting spontaneous PSCs in vitro and in vivo has been challenging, because of the small amplitude, the variable kinetics, and the undefined time of generation of these events. Here, we describe a, to our knowledge, new method for detecting spontaneous synaptic events by deconvolution, using a template that approximates the average time course of spontaneous PSCs. A recorded PSC trace is deconvolved from the template, resulting in a series of delta-like functions. The maxima of these delta-like events are reliably detected, revealing the precise onset times of the spontaneous PSCs. Among all detection methods, the deconvolution-based method has a unique temporal resolution, allowing the detection of individual events in high-frequency bursts. Furthermore, the deconvolution-based method has a high amplitude resolution, because deconvolution can substantially increase the signaloise ratio. When tested against previously published methods using experimental data, the deconvolution-based method was superior for spontaneous PSCs recorded in vivo. Using the high-resolution deconvolution-based detection algorithm, we show that the frequency of spontaneous excitatory postsynaptic currents in dentate gyrus granule cells is 4.5 times higher in vivo than in vitro.
机译:自发性突触后电流(PSC)提供有关突触传递机制和神经网络活动模式的关键信息。但是,由于振幅小,动力学变化以及产生这些事件的时间不确定,因此在体外和体内检测自发PSC一直具有挑战性。在这里,我们就我们所知,描述了一种通过解卷积来检测自发突触事件的新方法,该方法使用的模板近似于自发PSC的平均时间过程。记录的PSC轨迹与模板解卷积,从而产生一系列类似delta的函数。可以可靠地检测到这些类似三角形事件的最大值,从而揭示了自发PSC的准确发作时间。在所有检测方法中,基于反卷积的方法具有独特的时间分辨率,可以检测高频猝发中的单个事件。此外,基于解卷积的方法具有较高的幅度分辨率,因为解卷积可以大大提高信噪比。当使用实验数据针对先前发布的方法进行测试时,基于反卷积的方法对于体内记录的自发PSC而言是优越的。使用高分辨率的基于反卷积的检测算法,我们表明齿状回颗粒细胞中的自发性兴奋性突触后突触电流的频率在体内比体外高4.5倍。

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