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HCN 与 Slack 通道相互作用调节工作记忆回路中 mPFC 锥体神经元的兴奋性。

Interaction Between HCN and Slack Channels Regulates mPFC Pyramidal Cell Excitability in Working Memory Circuits.

机构信息

Department of Pharmacology, Yale School of Medicine, New Haven, CT, 06520, USA.

Department of Neuroscience, Yale School of Medicine, New Haven, CT, 06520, USA.

出版信息

Mol Neurobiol. 2024 Apr;61(4):2430-2445. doi: 10.1007/s12035-023-03719-8. Epub 2023 Oct 27.

Abstract

The ability of monkeys and rats to carry out spatial working memory tasks has been shown to depend on the persistent firing of pyramidal cells in the prefrontal cortex (PFC), arising from recurrent excitatory connections on dendritic spines. These spines express hyperpolarization-activated cyclic nucleotide-gated (HCN) channels whose open state is increased by cAMP signaling, and which markedly alter PFC network connectivity and neuronal firing. In traditional neural circuits, activation of these non-selective cation channels leads to neuronal depolarization and increased firing rate. Paradoxically, cAMP activation of HCN channels in PFC pyramidal cells reduces working memory-related neuronal firing. This suggests that activation of HCN channels may hyperpolarize rather than depolarize these neurons. The current study tested the hypothesis that Na influx through HCN channels activates Slack Na-activated K (K) channels to hyperpolarize the membrane. We have found that HCN and Slack K channels co-immunoprecipitate in cortical extracts and that, by immunoelectron microscopy, they colocalize at postsynaptic spines of PFC pyramidal neurons. A specific blocker of HCN channels, ZD7288, reduces K current in pyramidal cells that express both HCN and Slack channels, but has no effect on K currents in an HEK cell line expressing Slack without HCN channels, indicating that blockade of HCN channels in neurons reduces K current indirectly by lowering Na influx. Activation of HCN channels by cAMP in a cell line expressing a Ca reporter results in elevation of cytoplasmic Ca, but the effect of cAMP is reversed if the HCN channels are co-expressed with Slack channels. Finally, we used a novel pharmacological blocker of Slack channels to show that inhibition of Slack in rat PFC improves working memory performance, an effect previously demonstrated for blockers of HCN channels. Our results suggest that the regulation of working memory by HCN channels in PFC pyramidal neurons is mediated by an HCN-Slack channel complex that links activation HCN channels to suppression of neuronal excitability.

摘要

猴子和老鼠执行空间工作记忆任务的能力取决于前额叶皮层 (PFC) 中锥体神经元的持续放电,这是由树突棘上的复发性兴奋性连接引起的。这些树突棘表达超极化激活环核苷酸门控 (HCN) 通道,其开放状态可被 cAMP 信号增加,并且明显改变 PFC 网络连接和神经元放电。在传统的神经回路中,这些非选择性阳离子通道的激活会导致神经元去极化和放电率增加。矛盾的是,PFC 锥体神经元中 cAMP 对 HCN 通道的激活会降低与工作记忆相关的神经元放电。这表明 HCN 通道的激活可能使这些神经元超极化而不是去极化。本研究检验了以下假设:即 HCN 通道中的 Na+内流激活 Slack Na+激活的 K (K) 通道以使膜超极化。我们发现 HCN 和 Slack K 通道在皮质提取物中共免疫沉淀,并且通过免疫电子显微镜,它们在 PFC 锥体神经元的突触后棘共定位。HCN 通道的特异性阻断剂 ZD7288 降低表达 HCN 和 Slack 通道的锥体细胞中的 K 电流,但对仅表达 Slack 而无 HCN 通道的 HEK 细胞系中的 K 电流没有影响,表明神经元中 HCN 通道的阻断通过降低 Na+内流间接降低 K 电流。在表达钙报告器的细胞系中,cAMP 对 HCN 通道的激活会导致细胞质 Ca2+升高,但如果 HCN 通道与 Slack 通道共表达,则 cAMP 的作用会反转。最后,我们使用了一种新型的 Slack 通道药理学阻断剂来表明,抑制大鼠 PFC 中的 Slack 可改善工作记忆性能,这一效应先前已在 HCN 通道阻断剂中得到证实。我们的结果表明,PFC 锥体神经元中 HCN 通道对工作记忆的调节是由 HCN-Slack 通道复合物介导的,该复合物将 HCN 通道的激活与神经元兴奋性的抑制联系起来。

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