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Dendritic and Axonal Propagation Delays Determine Emergent Structures of Neuronal Networks with Plastic Synapses

机译:树突和轴突的传播延迟确定具有突触的神经元网络的新兴结构。

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Spike-timing-dependent plasticity (STDP) modifies synaptic strengths based on the relative timing of pre- and postsynaptic spikes. The temporal order of spikes turned out to be crucial. We here take into account how propagation delays, composed of dendritic and axonal delay times, may affect the temporal order of spikes. In a minimal setting, characterized by neglecting dendritic and axonal propagation delays, STDP eliminates bidirectional connections between two coupled neurons and turns them into unidirectional connections. In this paper, however, we show that depending on the dendritic and axonal propagation delays, the temporal order of spikes at the synapses can be different from those in the cell bodies and, consequently, qualitatively different connectivity patterns emerge. In particular, we show that for a system of two coupled oscillatory neurons, bidirectional synapses can be preserved and potentiated. Intriguingly, this finding also translates to large networks of type-II phase oscillators and, hence, crucially impacts on the overall hierarchical connectivity patterns of oscillatory neuronal networks.
机译:尖峰时间依赖性可塑性(STDP)会根据突触前和突触后突波的相对时间来改变突触强度。尖峰的时间顺序被证明是至关重要的。我们在这里考虑了由树突和轴突延迟时间组成的传播延迟如何影响尖峰的时间顺序。在最小的情况下(以忽略树突和轴突的传播延迟为特征),STDP消除了两个耦合神经元之间的双向连接,并将它们转变为单向连接。然而,在本文中,我们表明,取决于树突和轴突的传播延迟,突触中的尖峰的时间顺序可能与细胞体中的不同,因此,在质量上会出现不同的连接方式。特别地,我们表明对于两个耦合的振荡神经元的系统,双向突触可以被保留和增强。有趣的是,这一发现还转化为II型相位振荡器的大型网络,因此,对振荡神经元网络的整体分层连接模式产生了至关重要的影响。

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