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Developmental Switch in Spike Timing-Dependent Plasticity at Layers 4–2/3 in the Rodent Barrel Cortex

机译:啮齿类动物的大脑皮层4–2 / 3层中与穗时间相关的可塑性的发展性转变

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摘要

Sensory deprivation during the critical period induces long-lasting changes in cortical maps. In the rodent somatosensory cortex (S1), its precise initiation mechanism is not known, yet spike timing-dependent plasticity (STDP) at layer 4 (L4)–L2/3 synapses are thought to be crucial. Whisker stimulation causes “L4 followed by L2/3” cell firings, while acute single whisker deprivation suddenly reverses the sequential order in L4 and L2/3 neurons in the deprived column (). Reversed spike sequence then leads to long-term depression through an STDP mechanism (timing-dependent long-term depression), known as deprivation-induced suppression at L4–L2/3 synapses (), an important first step in the map reorganization. Here we show that STDP properties change dramatically on postnatal day 13–15 (P13–P15) in mice S1. Before P13, timing-dependent long-term potentiation (t-LTP) was predominantly induced regardless of spiking order. The induction of t-LTP required postsynaptic influx of Ca2+, an activation of protein kinase A, but not calcium/calmodulin-dependent protein kinase II. Consistent with the strong bias toward t-LTP, whisker deprivation (all whiskers in Row “D”) from P7–P12 failed to induce synaptic depression at L4–L2/3 synapses in the deprived column, but clear depression was seen if deprivation occurred after P14. Random activation of L4, L2/3 cells, as may occur in response to whisker stimulation before P13 during network formation, led to potentiation under the immature STDP rule, as predicted from the bias toward t-LTP regardless of spiking order. These findings describe a developmental switch in the STDP rule that may underlie the transition from synapse formation to circuit reorganization at L4–L2/3 synapses, both in distinct activity-dependent manners.
机译:关键时期的感觉剥夺会引起皮质图谱的长期变化。在啮齿动物的体感皮层(S1)中,其精确的启动机制尚不清楚,但是,第4层(L4)–L2 / 3突触的峰值时序相关可塑性(STDP)被认为是至关重要的。晶须刺激会导致“ L4继之以L2 / 3”的细胞放电,而急性单晶须剥夺突然使被剥夺的柱中L4和L2 / 3神经元的顺序相反。然后,相反的尖峰序列会通过STDP机制(时序相关的长期抑制)导致长期抑制,这被称为L4-L2 / 3突触处的剥夺诱导抑制(),这是图谱重组的重要第一步。在这里,我们显示了在小鼠S1出生后第13-15天(P13-P15),STDP特性发生了巨大变化。在P13之前,无论加标顺序如何,都主要诱导出与时间有关的长期增强(t-LTP)。 t-LTP的诱导需要突触后的Ca 2 + 流入,这是蛋白激酶A的激活,而不是钙/钙调蛋白依赖性蛋白激酶II的激活。与对t-LTP的强烈偏向一致,P7–P12的晶须剥夺(“ D”行中的所有晶须)未能在剥夺的柱的L4–L2 / 3突触中诱导突触抑制,但如果发生剥夺则可以看到明显的压抑在P14之后。 L4,L2 / 3细胞的随机激活,可能是由于在网络形成过程中在P13之前的晶须刺激而发生的,在未成熟的STDP规则下导致了增强,这是根据对t-LTP的偏见所预测的,而与加标顺序无关。这些发现描述了STDP规则的发展性转变,这可能是从突触形成到L4–L2 / 3突触的电路重组的过渡,这两种活动均与活动有关。

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