Wu Chiping, Asl Marjan Nassiri, Gillis Jesse, Skinner Frances K, Zhang Liang
Toronto Western Research Institute, University Health Network, Department of Medicine, University of Toronto, Ontario, Canada.
J Neurophysiol. 2005 Jul;94(1):741-53. doi: 10.1152/jn.00086.2005. Epub 2005 Mar 16.
During slow wave sleep and consummatory behaviors, electroencephalographic recordings from the rodent hippocampus reveal large amplitude potentials called sharp waves. The sharp waves originate from the CA3 circuitry and their generation is correlated with coherent discharges of CA3 pyramidal neurons and dependent on activities mediated by AMPA glutamate receptors. To model sharp waves in a relatively large hippocampal circuitry in vitro, we developed thick (1 mm) mouse hippocampal slices by separating the dentate gyrus from the CA2/CA1 areas while keeping the functional dentate gyrus-CA3-CA1 connections. We found that large amplitude (0.3-3 mV) sharp wave-like field potentials occurred spontaneously in the thick slices without extra ionic or pharmacological manipulation and they resemble closely electroencephalographic sharp waves with respect to waveform, regional initiation, pharmacological manipulations, and intracellular correlates. Through measuring tissue O2, K+, and synaptic and single cell activities, we verified that the sharp wave-like potentials are not a consequence of anoxia, nonspecific elevation of extracellular K+ and dissection-related tissue damage. Our data suggest that a subtle but crucial increase in the CA3 glutamatergic activity effectively recruits a population of neurons thus responsible for the generation of the sharp wave-like spontaneous field potentials in isolated hippocampal circuitry.
在慢波睡眠和 consummatory 行为期间,啮齿动物海马体的脑电图记录显示出称为尖波的大幅度电位。尖波起源于 CA3 神经回路,其产生与 CA3 锥体神经元的同步放电相关,并依赖于由 AMPA 谷氨酸受体介导的活动。为了在体外相对较大的海马神经回路中模拟尖波,我们通过将齿状回与 CA2/CA1 区域分离,同时保持功能性的齿状回-CA3-CA1 连接,开发了厚(1 毫米)的小鼠海马切片。我们发现,在厚切片中,无需额外的离子或药理学操作,就会自发出现大幅度(0.3 - 3 毫伏)的类似尖波的场电位,并且它们在波形、区域起始、药理学操作和细胞内相关性方面与脑电图尖波非常相似。通过测量组织中的氧气、钾离子以及突触和单细胞活动,我们证实类似尖波的电位不是缺氧、细胞外钾离子的非特异性升高以及与解剖相关的组织损伤的结果。我们的数据表明,CA3 谷氨酸能活动的细微但关键的增加有效地募集了一群神经元,从而导致在孤立的海马神经回路中产生类似尖波的自发场电位。