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Network Plasticity Involved in the Spread of Neural Activity Within the Rhinal Cortices as Revealed by Voltage-Sensitive Dye Imaging in Mouse Brain Slices

机译:在小鼠脑切片中的电压敏感染料成像揭示的哈米纳皮质内神经活动蔓延的网络可塑性

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摘要

The rhinal cortices, such as the perirhinal cortex (PC) and the entorhinal cortex (EC), are located within the bidirectional pathway between the neocortex and the hippocampus. Physiological studies indicate that the perirhinal transmission of neocortical inputs to the EC occurs at an extremely low probability, though many anatomical studies indicated strong connections exist in the pathway. Our previous study in rat brain slices indicated that an increase in excitability in deep layers of the PC/EC border initiated the neural activity transfer from the PC to the EC. In the present study, we hypothesized that such changes in network dynamics are not incidental observations but rather due to the plastic features of the perirhinal network, which links with the EC. To confirm this idea, we analyzed the network properties of neural transmission throughout the rhinal cortices and the plastic behavior of the network by performing a single-photon wide-field optical recording technique with a voltage-sensitive dye (VSD) in mouse brain slices of the PC, the EC, and the hippocampus. The low concentration of 4-aminopyridine (4-AP; 40 μM) enhanced neural activity in the PC, which eventually propagated to the EC via the deep layers of the PC/EC border. Interestingly, washout of 4-AP was unable to reverse entorhinal activation to the previous state. This change in the network property persisted for more than 1 h. This observation was not limited to the application of 4-AP. Burst stimulation to neurons in the perirhinal deep layers also induced the same change of network property. These results indicate the long-lasting modification of physiological connection between the PC and the EC, suggesting the existence of plasticity in the perirhinal-entorhinal network.
机译:rhintin皮质,例如Perihinal皮质(PC)和Entorhinal Cortex(EC),位于Neocortex和海马之间的双向途径内。生理学研究表明,Neocortical输入对EC的终聚氨因传播以极低的概率发生,尽管许多解剖学研究表明途径中存在强的连接。我们以前在大鼠脑切片的研究表明,PC / EC边界的深层兴奋性的增加将从PC转移到EC的神经活动转移。在本研究中,我们假设网络动态的这种变化不是偶然的观察,而是由于终极网络的塑性特征,与EC联系。为了确认这个想法,我们通过在小鼠脑切片中进行了用电压敏感染料(VSD)的单光子宽场光学记录技术分析了整个列莱纳皮质的神经传输网络性质和网络的塑性行为PC,EC和海马。低浓度的4-氨基吡啶(4-AP;40μm)增强了PC中的神经活动,最终通过PC / EC边界的深层传播到EC。有趣的是,4-AP的冲洗不能向前状态反转有机激活。网络属性的这种变化持续超过1小时。该观察不限于4-AP的应用。对终点层中的神经元的爆发刺激也诱导了网络性质的相同变化。这些结果表明PC与EC之间的生理连接的长期改变,表明Perirhinal-Entorhinal网络中的可塑性存在。

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