首页> 外文OA文献 >Electrophysiology of a slow (0.5-4 Hz) intrinsic oscillation of cat thalamocortical neurones in vivo.
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Electrophysiology of a slow (0.5-4 Hz) intrinsic oscillation of cat thalamocortical neurones in vivo.

机译:体内猫丘脑皮质神经元缓慢(0.5-4 Hz)固有振荡的电生理。

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摘要

1. Electrophysiologically identified thalamocortical neurones have been intra- and extracellularly recorded in acutely prepared cats, under different anaesthetic conditions. 2. A slow (0.5-4 Hz) membrane potential oscillation was observed in thalamocortical cells recorded in motor, sensory, associational and intralaminar thalamic nuclei. The oscillation consisted of rhythmic low-threshold spikes alternating with after-hyperpolarizations. 3. About 80% of the neurones with intact cortical connections were set into the slow oscillatory mode by bringing their membrane potential to between -68 and -90 mV. The oscillation did not depend upon the occurrence of fast action potentials and did not outlast the imposed hyperpolarization. 4. Anatomical or functional disconnection from related cortical areas resulted in a membrane potential hyperpolarization of about 9 mV and in the occurrence of spontaneous slow oscillations in virtually all recorded neurones. The intrinsic nature of the phenomenon was supported by the lack of rhythmic postsynaptic potentials as the cells were prevented from oscillating by outward current injection. 5. In contrast with other thalamic nuclei, the slow oscillation has not been observed in anterior thalamic neurones despite their having similar basic electrophysiological properties. 6. Barbiturate administration suppressed the slow oscillatory mode, an effect accompanied by a decrease in the membrane input resistance. 7. Multiunit recordings of spontaneously oscillating cells showed epochs characterized by phase-related firing. This synchronous discharge was paralleled by a clear-cut build-up of field potentials in the frequency range of electroencephalogram slow or delta waves. 8. These results demonstrate that the majority of thalamocortical neurones are endowed with electrophysiological properties allowing them to oscillate at 0.5-4 Hz, if they have a membrane potential more negative than -65 mV and a high input resistance. Such a condition is physiologically achieved in the deepest stages of electroencephalogram-synchronized sleep, as a result of brain stem-thalamic as well as cortico-thalamic deafferentation. We postulate a thalamic contribution in the genesis of electroencephalogram delta waves during slow wave sleep, once independently oscillating thalamocortical cells become in phase.
机译:1.在不同麻醉条件下,在急性处理的猫体内和细胞外均记录了电生理学鉴定的丘脑皮质神经元。 2.在运动,感觉,缔合和层内丘脑核中记录的丘脑皮层细胞中观察到缓慢的膜电位振荡(0.5-4 Hz)。振荡由有节奏的低阈值尖峰和超极化后交替组成。 3.大约80%的具有完整皮质连接的神经元通过将其膜电位提高到-68至-90 mV之间而进入了缓慢振荡模式。振荡不依赖于快速动作电位的发生,也不比强加的超极化持久。 4.与相关皮层区域的解剖或功能断开导致膜电位超极化约9 mV,并且实际上在所有记录的神经元中均发生自发的缓慢振荡。由于缺乏节律的突触后电位,该现象的内在性质得到了支持,因为通过外向电流注入阻止了细胞的振荡。 5.与其他丘脑核相反,尽管丘脑前神经元具有类似的基本电生理特性,但尚未观察到缓慢的振荡。 6.巴比妥类药物的给药抑制了慢振荡模式,这种作用伴随着膜输入阻力的降低。 7.自发振荡细胞的多单位记录显示出以相相关激发为特征的时期。这种同步放电与脑电图慢波或三角波频率范围内清晰的场电势并行。 8.这些结果表明,如果丘脑皮层神经元的膜电位比-65 mV负,并且输入电阻高,则大多数丘脑皮层神经元具有电生理特性,可使其在0.5-4 Hz处振荡。由于脑干-丘脑以及皮质-丘脑的去铁裂作用,在脑电图同步睡眠的最深阶段生理上可以达到这种条件。我们假设丘脑在慢波睡眠期间脑电图三角波的发生中起重要作用,一旦独立振荡的丘脑皮层细胞进入同相状态。

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