Kajiwara Riichi, Takashima Ichiro, Mimura Yuka, Witter Menno P, Iijima Toshio
Neuroscience Research Institute, National Institute of Advanced Industrial Science and Technology, 1-1-1 Umezono, Tsukuba 305-8568, Japan.
J Neurophysiol. 2003 Apr;89(4):2176-84. doi: 10.1152/jn.01033.2002. Epub 2002 Nov 20.
A number of sensory modalities most likely converge in the rat perirhinal cortex. The perirhinal cortex also interconnects with the amygdala, which plays an important role in various motivational and emotional behaviors. The neural pathway from the perirhinal cortex to the entorhinal cortex is considered one of the main paths into the entorhinal-hippocampal network, which has a crucial role in memory processes. To investigate the potential associative function of the perirhinal cortex with respect to sensory and motivational stimuli and the influence of the association on the perirhinal-entorhinal-hippocampal neurocircuit, we prepared rat brain slices including the perirhinal cortex, entorhinal cortex, hippocampal formation, and amygdala. We used an optical imaging technique with a voltage-sensitive dye to analyze 1) the spatial and functional distribution of inputs from the lateral nucleus of the amygdala to the perirhinal cortex; 2) the spread of neural activity in the perirhinal cortex after layers II/III stimulation, which mimics sensory input to the perirhinal cortex; and 3) the effect of associative inputs to the perirhinal cortex from both the lateral amygdaloid nucleus and layers II/III of the perirhinal cortex on the perirhinal-entorhinal-hippocampal neurocircuit. Following stimulation in the superficial layers of the perirhinal cortex, electrical activity only propagated into the entorhinal cortex when sufficient activation occurred in the deep layers of perirhinal area 35. We observed that single stimulation of either the perirhinal cortex or amygdala did not result in sufficient neural activation of the deep layers of areas 35 to provoke activity propagation into the entorhinal cortex. However, the deep layers of area 35 were depolarized much more strongly when the two stimuli were applied simultaneously, resulting in spreading activation in the entorhinal cortex. Our observations suggest that a functional neural basis for the association of higher-order sensory inputs and emotion-related inputs exists in the perirhinal cortex and that transfer of sensory information to the entorhinal-hippocampal circuitry might be affected by the association of that information with incoming information from the amygdala.
许多感觉模态很可能在大鼠的嗅周皮质汇聚。嗅周皮质还与杏仁核相互连接,杏仁核在各种动机和情绪行为中发挥着重要作用。从嗅周皮质到内嗅皮质的神经通路被认为是进入内嗅 - 海马网络的主要路径之一,该网络在记忆过程中起着关键作用。为了研究嗅周皮质相对于感觉和动机刺激的潜在关联功能以及这种关联对嗅周 - 内嗅 - 海马神经回路的影响,我们制备了包含嗅周皮质、内嗅皮质、海马结构和杏仁核的大鼠脑片。我们使用一种电压敏感染料的光学成像技术来分析:1)从杏仁核外侧核到嗅周皮质的输入的空间和功能分布;2)在模仿对嗅周皮质的感觉输入的II/III层刺激后,神经活动在嗅周皮质中的传播;3)来自杏仁核外侧核和嗅周皮质II/III层对嗅周皮质的联合输入对嗅周 - 内嗅 - 海马神经回路的影响。在嗅周皮质浅层受到刺激后,只有当嗅周区域35的深层发生足够的激活时,电活动才会传播到内嗅皮质。我们观察到,单独刺激嗅周皮质或杏仁核都不会导致35区深层有足够的神经激活以引发活动传播到内嗅皮质。然而,当同时施加这两种刺激时,35区深层的去极化要强得多,从而导致内嗅皮质中的广泛激活。我们的观察结果表明,在嗅周皮质中存在高阶感觉输入和情绪相关输入关联的功能性神经基础,并且感觉信息向内嗅 - 海马回路的传递可能会受到该信息与来自杏仁核的传入信息关联的影响。