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Spike-timing-dependent synaptic plasticity depends on dendritic location

机译:尖峰时序依赖的突触可塑性取决于树突位置

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In the neocortex, each neuron receives thousands of synaptic inputs distributed across an extensive dendritic tree. Although postsynaptic processing of each input is known to depend on its dendritic location(1-8), it is unclear whether activity-dependent synaptic modification is also location-dependent. Here we report that both the magnitude and the temporal specificity of spike-timing-dependent synaptic modification(9-17) vary along the apical dendrite of rat cortical layer 2/3 pyramidal neurons. At the distal dendrite, the magnitude of long-termpotentiation is smaller, and the window of pre-/postsynaptic spike interval for long-term depression (LTD) is broader. The spike-timing window for LTD correlates with the window of action potential-induced suppression of NMDA (N-methyl-D-aspartate) receptors; this correlation applies to both their dendritic location-dependence and pharmacological properties. Presynaptic stimulation with partial blockade of NMDA receptors induced LTD and occluded further induction of spike-timing-dependent LTD, suggesting that NMDA receptor suppression underlies LTD induction. Computer simulation studies showed that the dendritic inhomogeneity of spike-timing-dependent synaptic modification leads to differential input selection at distal and proximal dendrites according to the temporal characteristics of presynaptic spike trains. Such location-dependent tuning of inputs, together with the dendritic heterogeneity of postsynaptic processing, could enhance the computational capacity of cortical pyramidal neurons.
机译:在新皮层中,每个神经元接收分布在广泛树突树上的数千个突触输入。尽管已知每个输入的突触后加工取决于其树突位置(1-8),但尚不清楚活动依赖性突触修饰是否也取决于位置。在这里我们报道,尖峰时间依赖的突触修饰(9-17)的大小和时间特异性都沿着大鼠皮质层2/3锥体神经元的根尖突变化。在远侧树突上,长期增强的幅度较小,而长期抑郁症(LTD)的突触前/突触后突峰间隔的窗口更宽。 LTD的峰值定时窗口与动作电位诱导的NMDA(N-甲基-D-天冬氨酸)受体抑制相关。这种相关性适用于它们的树突状位置依赖性和药理特性。突触前刺激与NMDA受体的部分阻滞诱导LTD,并进一步诱导依赖尖峰时间的LTD,这提示NMDA受体抑制是LTD诱导的基础。计算机模拟研究表明,根据突触前突波序列的时间特性,依赖于尖峰时序的突触修饰的树突状不均匀性导致远端和近端树突的差异输入选择。输入的这种位置依赖的调整以及突触后加工的树突状异质性可以增强皮质锥体神经元的计算能力。

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