Bartesaghi R, Gessi T, Migliore M
Istituto di Fisiologia Umana, Università di Bologna, Italy.
Hippocampus. 1995;5(5):440-51. doi: 10.1002/hipo.450050506.
The pattern of impulse transfer along the entorhinal-hippocampal-entorhinal loop has been analyzed in the guinea pig by field potential analysis. The loop was driven by impulse volleys conducted by presubicular commissural fibers, directly stimulated in the dorsal psalterium, which monosynaptically activated perforant path neurons in the medial entorhinal cortex. Perforant path volleys activated in sequence the dentate gyrus, field CA3, field CA1, subiculum, and entorhinal cortex. Input-output curves were reconstructed from responses simultaneously recorded from different stations along the loop. The entorhinal response to the presubicular volley was found to increase gradually with respect to its input. The population excitatory postsynaptic potential (EPSP) of the dentate gyrus granule cells had a similar behavior. By contrast, the input-output relation between the granule cell population spike and population EPSP was described by a very sleep sigmoid curve. The population spike of CA3 and CA1 pyramidal neurons as well as the response evoked in the entorhinal cortex by the hippocampal output had slightly higher threshold than the granule cell population spike and, like the latter, abruptly reached maximum amplitude. These findings show that the entorhinal-hippocampal-entorhinal loop transforms a linear input in a non-linear, almost all-or-none output and that the dentate gyrus is the critical site where the transformation occurs. Beyond the dentate gyrus, the loop appears very permeant to impulse traffic.
通过场电位分析,在豚鼠中分析了沿内嗅-海马-内嗅环路的冲动传递模式。该环路由前下连合纤维传导的冲动群驱动,这些纤维在背侧琴状束中直接受到刺激,它们单突触激活内侧内嗅皮质中的穿通通路神经元。穿通通路冲动群依次激活齿状回、CA3区、CA1区、下托和内嗅皮质。根据沿环路不同位点同时记录的反应重建输入-输出曲线。发现内嗅皮质对前下连合冲动群的反应相对于其输入逐渐增加。齿状回颗粒细胞的群体兴奋性突触后电位(EPSP)也有类似表现。相比之下,颗粒细胞群体锋电位与群体EPSP之间的输入-输出关系由一条非常陡峭的S形曲线描述。CA3区和CA1区锥体细胞的群体锋电位以及海马输出在内嗅皮质中诱发的反应,其阈值略高于颗粒细胞群体锋电位,并且与后者一样,突然达到最大振幅。这些发现表明,内嗅-海马-内嗅环路将线性输入转换为非线性的、几乎全或无的输出,并且齿状回是发生这种转换的关键位点。在齿状回之外,该环路似乎对冲动传递非常通透。