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挥发性麻醉剂异氟醚在前额叶皮层中,对锥体神经元和小清蛋白神经元的电压门控钠离子通道电流具有差异性抑制作用。

The volatile anesthetic isoflurane differentially inhibits voltage-gated sodium channel currents between pyramidal and parvalbumin neurons in the prefrontal cortex.

机构信息

Department of Anesthesiology, West China Hospital of Sichuan University, Chengdu, China.

Laboratory of Anesthesia and Critical Care Medicine, National-Local Joint Engineering Research Centre of Translational Medicine of Anesthesiology, West China Hospital of Sichuan University, Chengdu, China.

出版信息

Front Neural Circuits. 2023 Jun 16;17:1185095. doi: 10.3389/fncir.2023.1185095. eCollection 2023.

Abstract

BACKGROUND

How volatile anesthetics work remains poorly understood. Modulations of synaptic neurotransmission are the direct cellular mechanisms of volatile anesthetics in the central nervous system. Volatile anesthetics such as isoflurane may reduce neuronal interaction by differentially inhibiting neurotransmission between GABAergic and glutamatergic synapses. Presynaptic voltage-dependent sodium channels (Na), which are strictly coupled with synaptic vesicle exocytosis, are inhibited by volatile anesthetics and may contribute to the selectivity of isoflurane between GABAergic and glutamatergic synapses. However, it is still unknown how isoflurane at clinical concentrations differentially modulates Na currents between excitatory and inhibitory neurons at the tissue level.

METHODS

In this study, an electrophysiological recording was applied in cortex slices to investigate the effects of isoflurane on Na between parvalbumin (PV) and pyramidal neurons in PV-cre-tdTomato and/or vglut2-cre-tdTomato mice.

RESULTS

Isoflurane at clinically relevant concentrations produced a hyperpolarizing shift in the voltage-dependent inactivation and slowed the recovery time from the fast inactivation in both cellular subtypes. Since the voltage of half-maximal inactivation was significantly depolarized in PV neurons compared to that of pyramidal neurons, isoflurane inhibited the peak Na currents in pyramidal neurons more potently than those of PV neurons (35.95 ± 13.32% vs. 19.24 ± 16.04%, = 0.036 by the Mann-Whitney test).

CONCLUSIONS

Isoflurane differentially inhibits Na currents between pyramidal and PV neurons in the prefrontal cortex, which may contribute to the preferential suppression of glutamate release over GABA release, resulting in the net depression of excitatory-inhibitory circuits in the prefrontal cortex.

摘要

背景

挥发性麻醉剂的作用机制仍知之甚少。突触神经递质传递的调制是挥发性麻醉剂在中枢神经系统中的直接细胞机制。异氟醚等挥发性麻醉剂可能通过差异抑制 GABA 能和谷氨酸能突触之间的神经递质传递来减少神经元相互作用。与突触小泡胞吐严格偶联的电压依赖性钠通道(Na)被挥发性麻醉剂抑制,可能有助于异氟醚在 GABA 能和谷氨酸能突触之间的选择性。然而,目前尚不清楚异氟醚在临床浓度下如何在组织水平上差异调节兴奋性和抑制性神经元之间的 Na 电流。

方法

本研究应用电生理记录技术在皮层切片中研究异氟醚对 PV-cre-tdTomato 和/或 vglut2-cre-tdTomato 小鼠中 PV 和锥体神经元之间 Na 电流的影响。

结果

在临床相关浓度下,异氟醚使电压依赖性失活产生超极化漂移,并使快速失活的恢复时间减慢。由于 PV 神经元的半数失活电压与锥体神经元相比明显去极化,异氟醚对锥体神经元的峰值 Na 电流的抑制作用比 PV 神经元更强(35.95 ± 13.32%对 19.24 ± 16.04%,Mann-Whitney 检验 = 0.036)。

结论

异氟醚在额前皮质中差异抑制锥体和 PV 神经元之间的 Na 电流,这可能有助于优先抑制谷氨酸释放而不是 GABA 释放,从而导致额前皮质兴奋-抑制回路的净抑制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6b6c/10311640/7f924ef9eba4/fncir-17-1185095-g0001.jpg

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