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新皮质中表达小白蛋白的中间神经元的活动依赖性异位放电

Activity-Dependent Ectopic Spiking in Parvalbumin-Expressing Interneurons of the Neocortex.

作者信息

Theyel Brian B, Stevenson Rachel J, Connors Barry W

机构信息

Department of Psychiatry and Human Behavior, Warren Alpert Medical School, Brown University, Providence, Rhode Island 02912

Department of Neuroscience, Brown University, Providence, Rhode Island 02912.

出版信息

eNeuro. 2024 May 3;11(5). doi: 10.1523/ENEURO.0314-23.2024. Print 2024 May.

Abstract

Canonically, action potentials of most mammalian neurons initiate at the axon initial segment (AIS) and propagate bidirectionally: orthodromically along the distal axon and retrogradely into the soma and dendrites. Under some circumstances, action potentials may initiate ectopically, at sites distal to the AIS, and propagate antidromically along the axon. These "ectopic action potentials" (EAPs) have been observed in experimental models of seizures and chronic pain, and more rarely in nonpathological forebrain neurons. Here we report that a large majority of parvalbumin-expressing (PV+) interneurons in the upper layers of mouse neocortex, from both orbitofrontal and primary somatosensory areas, fire EAPs after sufficient activation of their somata. Somatostatin-expressing interneurons also fire EAPs, though less robustly. Ectopic firing in PV+ cells occurs in varying temporal patterns and can persist for several seconds. PV+ cells evoke strong synaptic inhibition in pyramidal neurons and interneurons and play critical roles in cortical function. Our results suggest that ectopic spiking of PV+ interneurons is common and may contribute to both normal and pathological network functions of the neocortex.

摘要

通常情况下,大多数哺乳动物神经元的动作电位在轴突起始段(AIS)起始并双向传播:顺向沿着轴突远端传播,逆向传入胞体和树突。在某些情况下,动作电位可能在AIS远端的位点异位起始,并沿轴突逆向传播。这些“异位动作电位”(EAPs)已在癫痫和慢性疼痛的实验模型中被观察到,在非病理性前脑神经元中则较少见。在此我们报告,来自眶额和初级体感区域的小鼠新皮层上层中,绝大多数表达小白蛋白(PV+)的中间神经元在其胞体充分激活后会产生EAPs。表达生长抑素的中间神经元也会产生EAPs,不过强度较弱。PV+细胞中的异位放电以不同的时间模式发生,并且可以持续数秒。PV+细胞在锥体细胞和中间神经元中引发强烈的突触抑制,并在皮层功能中发挥关键作用。我们的结果表明,PV+中间神经元的异位放电很常见,可能对新皮层的正常和病理网络功能都有贡献。

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