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Self-influencing synaptic plasticity: Recurrent changes of synaptic weights can lead to specific functional properties

机译:自影响突触可塑性:突触重量的反复变化可导致特定的功能特性

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Recent experimental results suggest that dendritic and back-propagating spikes can influence synaptic plasticity in different ways (Holthoff, 2004; Holthoff et al., 2005). In this study we investigate how these signals could interact at dendrites in space and time leading to changing plasticity properties at local synapse clusters. Similar to a previous study (Saudargiene et al., 2004) we employ a differential Hebbian learning rule to emulate spike-timing dependent plasticity and investigate how the interaction of dendritic and back-propagating spikes, as the post-synaptic signals, could influence plasticity. Specifically, we will show that local synaptic plasticity driven by spatially confined dendritic spikes can lead to the emergence of synaptic clusters with different properties. If one of these clusters can drive the neuron into spiking, plasticity may change and the now arising global influence of a back-propagating spike can lead to a further segregation of the clusters and possibly the dying-off of some of them leading to more functional specificity. These results suggest that through plasticity being a spatial and temporal local process, the computational properties of dendrites or complete neurons can be substantially augmented.
机译:最近的实验结果表明,树突状和向后传播的尖峰可以不同方式影响突触可塑性(Holthoff,2004; Holthoff等,2005)。在这项研究中,我们研究了这些信号如何在空间和时间上的树突上相互作用,从而导致局部突触簇的可塑性改变。与先前的研究(Saudargiene等人,2004)类似,我们采用了不同的Hebbian学习规则来模拟穗期依赖的可塑性,并研究突触后信号作为突触后信号的相互作用如何影响可塑性。 。具体来说,我们将显示由空间受限的树突状峰驱动的局部突触可塑性可导致具有不同特性的突触簇的出现。如果这些簇中的一个可以驱动神经元突增,则可塑性可能会发生变化,并且反向传播的尖峰现在正在产生的全球影响可能导致簇进一步分离,甚至可能使其中一些簇消失,从而导致更多的功能性。特异性。这些结果表明,通过可塑性作为空间和时间的局部过程,可以显着增强树突或完整神经元的计算特性。

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