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Dissociation of slow waves and fast oscillations above 200 Hz during GABA application in rat somatosensory cortex

机译:GABA在大鼠体感皮层中的应用中慢波和200 Hz以上的快速振荡的解离

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摘要

Fast electrical oscillations (FOs; > 200 Hz), superimposed on vibrissa-evoked slow potentials, may support rapid sensory integration in neocortex. Yet, while it is well established that the positiveegative (P1/N1) slow wave of the somatosensory evoked potential primarily reflects sequential activation of supragranular and infragranular pyramidal cells mediated chiefly via excitatory chemical synaptic pathways, little is known about the generation of FOs. In this study, laminar current source–density analysis and principal component analysis indicated that FOs are generated by two dipolar current sources situated in the supra- and infragranular layers, similar in laminar location to the two current dipoles associated with the slow wave. However, exogenous GABA application reversibly abolished the N1 slow wave, leaving the P1 intact, while the FO was unaffected by GABA. Furthermore, reductions in both supra- and infragranular cortical unit discharge during application of GABA suggests that FO generation is not dependent on the same intracortical synaptic circuits that are associated with the N1 slow wave. These data suggest a marked functional dissociation between neural mechanisms underlying the slow and fast components of the vibrissa-evoked response.
机译:叠加在触须诱发的慢电位上的快速电振荡(FOs;> 200 Hz),可能支持新皮层的快速感觉整合。然而,尽管已经确定,体感诱发电位的正/负(P1 / N1)慢波主要反映了主要通过兴奋性化学突触途径介导的颗粒上和颗粒下锥体细胞的顺序激活,但对FO的产生知之甚少。在这项研究中,层流电流源密度分析和主成分分析表明,FO由位于上层和下层的两个偶极电流源产生,在层流位置类似于与慢波相关的两个电流偶极。但是,外源GABA的应用可逆地取消了N1慢波,使P1完好无损,而FO不受GABA的影响。此外,在应用GABA的过程中,皮质上和皮质下的单位放电均减少,这表明FO的产生不依赖于与N1慢波相关的同一皮质内突触回路。这些数据表明,在触须诱发反应的慢速和快速成分所依据的神经机制之间存在明显的功能分离。

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