Unité de Neurobiologie des canaux Ioniques et de la Synapse, UMR 1072, Institut National de la Santé et de la Recherche Médicale, Aix-Marseille Université, 13015 Marseille, France
Unité de Neurobiologie des canaux Ioniques et de la Synapse, UMR 1072, Institut National de la Santé et de la Recherche Médicale, Aix-Marseille Université, 13015 Marseille, France.
J Neurosci. 2021 Nov 17;41(46):9521-9538. doi: 10.1523/JNEUROSCI.1279-21.2021. Epub 2021 Oct 7.
KCNQ-Kv7 channels are found at the axon initial segment of pyramidal neurons, where they control cell firing and membrane potential. In oriens lacunosum moleculare (O-LM) interneurons, these channels are mainly expressed in the dendrites, suggesting a peculiar function of Kv7 channels in these neurons. Here, we show that Kv7 channel activity is upregulated following induction of presynaptic long-term synaptic depression (LTD) in O-LM interneurons from rats of both sex, thus resulting in a synergistic long-term depression of intrinsic excitability (LTD-IE). Both LTD and LTD-IE involve endocannabinoid (eCB) biosynthesis for induction. However, although LTD is dependent on cannabinoid type 1 receptors, LTD-IE is not. Molecular modeling shows a strong interaction of eCBs with Kv7.2/3 channel, suggesting a persistent action of these lipids on Kv7 channel activity. Our data thus unveil a major role for eCB synthesis in triggering both synaptic and intrinsic depression in O-LM interneurons. In principal cells, Kv7 channels are essentially located at the axon initial segment. In contrast, in O-LM interneurons, Kv7 channels are highly expressed in the dendrites, suggesting a singular role of these channels in O-LM cell function. Here, we show that LTD of excitatory inputs in O-LM interneurons is associated with an upregulation of Kv7 channels, thus resulting in a synergistic LTD of LTD-IE. Both forms of plasticity are mediated by the biosynthesis of eCBs. Stimulation of CB1 receptors induces LTD, whereas the direct interaction of eCBs with Kv7 channels induces LTD-IE. Our results thus provide a previously unexpected involvement of eCBs in long-lasting plasticity of intrinsic excitability in GABAergic interneurons.
KCNQ-Kv7 通道位于锥体神经元的轴突起始段,控制细胞放电和膜电位。在齿状回分子层(O-LM)中间神经元中,这些通道主要在树突中表达,表明 Kv7 通道在这些神经元中具有特殊功能。在这里,我们发现在大鼠 O-LM 中间神经元的突触前长时程突触抑制(LTD)诱导后,Kv7 通道活性上调,从而导致内在兴奋性(LTD-IE)的协同长时程抑制。LTD 和 LTD-IE 的诱导都涉及内源性大麻素(eCB)的生物合成。然而,尽管 LTD 依赖于大麻素 1 型受体,但 LTD-IE 则不然。分子建模显示 eCB 与 Kv7.2/3 通道具有强烈的相互作用,表明这些脂质对 Kv7 通道活性具有持久作用。因此,我们的数据揭示了 eCB 合成在触发 O-LM 中间神经元突触和内在抑制中的主要作用。在主细胞中,Kv7 通道主要位于轴突起始段。相比之下,在 O-LM 中间神经元中,Kv7 通道在树突中高度表达,表明这些通道在 O-LM 细胞功能中具有独特的作用。在这里,我们表明 O-LM 中间神经元中兴奋性输入的 LTD 与 Kv7 通道的上调有关,从而导致 LTD-IE 的协同 LTD。这两种形式的可塑性都是由 eCB 的生物合成介导的。CB1 受体的刺激诱导 LTD,而 eCB 与 Kv7 通道的直接相互作用诱导 LTD-IE。因此,我们的研究结果为 eCB 在内侧抑制性中间神经元的内在兴奋性的长时程可塑性中提供了以前未预料到的参与。