INSERM UMR-S 839, F75005 Paris, France.
J Physiol. 2013 Apr 1;591(7):1809-22. doi: 10.1113/jphysiol.2012.245852. Epub 2013 Jan 21.
Hippocampal parvalbumin-expressing interneurons (PV INs) provide fast and reliable GABAergic signalling to principal cells and orchestrate hippocampal ensemble activities. Precise coordination of principal cell activity by PV INs relies in part on the efficacy of excitatory afferents that recruit them in the hippocampal network. Feed-forward (FF) inputs in particular from Schaffer collaterals influence spike timing precision in CA1 principal cells whereas local feedback (FB) inputs may contribute to pacemaker activities. Although PV INs have been shown to undergo activity-dependent long term plasticity, how both inputs are modulated during principal cell firing is unknown. Here we show that FF and FB synapses onto PV INs are endowed with distinct postsynaptic glutamate receptors which set opposing long-term plasticity rules. Inward-rectifying AMPA receptors (AMPARs) expressed at both FF and FB inputs mediate a form of anti-Hebbian long term potentiation (LTP), relying on coincident membrane hyperpolarization and synaptic activation. In contrast, FF inputs are largely devoid of NMDA receptors (NMDARs) which are more abundant at FB afferents and confer on them an additional form of LTP with Hebbian properties. Both forms of LTP are expressed with no apparent change in presynaptic function. The specific endowment of FF and FB inputs with distinct coincidence detectors allow them to be differentially tuned upon high frequency afferent activity. Thus, high frequency (>20 Hz) stimulation specifically potentiates FB, but not FF afferents. We propose that these differential, input-specific learning rules may allow PV INs to adapt to changes in hippocampal activity while preserving their precisely timed, clockwork operation.
海马区表达 parvalbumin 的中间神经元 (PV INs) 向主细胞提供快速而可靠的 GABA 能信号传递,并协调海马区的整体活动。PV INs 对主细胞活动的精确协调部分依赖于兴奋性传入的有效性,这些传入在海马区网络中招募它们。特别是来自 Schaffer 侧支的前馈 (FF) 输入会影响 CA1 主细胞的尖峰时间精度,而局部反馈 (FB) 输入可能有助于起搏器活动。尽管已经表明 PV INs 经历了依赖于活动的长期可塑性,但在主细胞放电期间如何调节这两种输入尚不清楚。在这里,我们表明,PV INs 上的 FF 和 FB 突触具有不同的突触后谷氨酸受体,这些受体设定了相反的长期可塑性规则。在 FF 和 FB 输入上表达的内向整流 AMPA 受体 (AMPAR) 介导了一种抗海伯氏长时程增强作用 (LTP),这依赖于膜超极化和突触激活的偶联。相比之下,FF 输入几乎没有 NMDA 受体 (NMDAR),而 NMDAR 在 FB 传入中更为丰富,并赋予它们具有海伯氏特性的另一种 LTP。这两种形式的 LTP 都没有明显的突触前功能改变。FF 和 FB 输入的独特巧合探测器的特定赋予使它们能够在高频传入活动中进行差异调节。因此,高频 (>20 Hz) 刺激特异性增强 FB,但不增强 FF 传入。我们提出,这些差异的、输入特异性的学习规则可能允许 PV INs 在保持其精确计时的时钟操作的同时适应海马区活动的变化。