论文标题
峰值依赖性可塑性对神经同步的时间模式的影响
Spike-Timing Dependent Plasticity Effect on the Temporal Patterning of Neural Synchronization
论文作者
论文摘要
静止时大脑中的神经同步通常是可变且间歇性的,因此,主要同步活性的间隔会通过异步活性的间隔中断。先前的研究表明,弱同步活性的这种时间结构在功能上可能很重要:即使平均同步水平相同,许多简短的简介也可能在功能上与少数长的无调。在这项研究中,我们使用计算神经科学方法研究了简单模型中同步的时间模式,研究峰值依赖性可塑性(STDP)的影响。我们采用了通过兴奋性塑料突触连接的基于电导的模型神经元网络。该网络的动力学经受了先前实验研究中使用的时间序列分析方法。我们发现,根据可塑性的时间尺度,STDP可以以几种方式改变网络中的同步动力学。但是,通常,STDP在此处考虑的简单网络中的作用是促进具有短对异步的动力学(即动态学,让人联想到实验研究中观察到的动力学)。细胞和突触动力学的复杂相互作用可能会导致突触强度的活性依赖性调节,以促进间歇性同步的神经活动中实验性观察到的短对同步。
Neural synchrony in the brain at rest is usually variable and intermittent, thus intervals of predominantly synchronized activity are interrupted by intervals of desynchronized activity. Prior studies suggested that this temporal structure of the weakly synchronous activity might be functionally significant: many short desynchronizations may be functionally different from few long desynchronizations even if the average synchrony level is the same. In this study, we used computational neuroscience methods to investigate the effects of spike-timing dependent plasticity (STDP) on the temporal patterns of synchronization in a simple model. We employed a small network of conductance-based model neurons that were connected via excitatory plastic synapses. The dynamics of this network was subjected to the time-series analysis methods used in prior experimental studies. We found that STDP could alter the synchronized dynamics in the network in several ways, depending on the time scale that plasticity acts on. However, in general, the action of STDP in the simple network considered here is to promote dynamics with short desynchronizations (i.e. dynamics reminiscent of that observed in experimental studies). Complex interplay of the cellular and synaptic dynamics may lead to the activity-dependent adjustment of synaptic strength in such a way as to facilitate experimentally observed short desynchronizations in the intermittently synchronized neural activity.