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Dendritic Synapse Location and Neocortical Spike-Timing-Dependent Plasticity

机译:树突突触的位置和新皮层穗定时依赖的可塑性。

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摘要

While it has been appreciated for decades that synapse location in the dendritic tree has a powerful influence on signal processing in neurons, the role of dendritic synapse location on the induction of long-term synaptic plasticity has only recently been explored. Here, we review recent work revealing how learning rules for spike-timing-dependent plasticity (STDP) in cortical neurons vary with the spatial location of synaptic input. A common principle appears to be that proximal synapses show conventional STDP, whereas distal inputs undergo plasticity according to novel learning rules. One crucial factor determining location-dependent STDP is the backpropagating action potential, which tends to decrease in amplitude and increase in width as it propagates into the dendritic tree of cortical neurons. We discuss additional location-dependent mechanisms as well as the functional implications of heterogeneous learning rules at different dendritic locations for the organization of synaptic inputs.
机译:尽管几十年来人们已经认识到树突树中突触的位置对神经元信号的处理具有强大的影响,但直到最近才探索了树突触位置在诱导长期突触可塑性中的作用。在这里,我们回顾了最近的工作,这些工作揭示了皮质神经元中与穗定时相关的可塑性(STDP)的学习规则如何随着突触输入的空间位置而变化。一个共同的原则似乎是近端突触显示出常规的STDP,而远端输入则根据新的学习规则而具有可塑性。决定位置依赖性STDP的一个关键因素是反向传播的动作电位,当它传播到皮层神经元的树突状树中时,其幅度往往会减小,宽度则会增加。我们讨论了额外的位置相关的机制,以及在不同的树突位置异质学习规则对于突触输入组织的功能含义。

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