首页> 美国卫生研究院文献>The Journal of Neuroscience >Synchronous Infra-Slow Bursting in the Mouse Accessory Olfactory Bulb Emerge from Interplay between Intrinsic Neuronal Dynamics and Network Connectivity
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Synchronous Infra-Slow Bursting in the Mouse Accessory Olfactory Bulb Emerge from Interplay between Intrinsic Neuronal Dynamics and Network Connectivity

机译:固有的神经元动力学和网络连接之间的相互作用会出现鼠标附件嗅球中的同步红外慢爆发。

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摘要

Rhythmic neuronal activity of multiple frequency bands has been described in many brain areas and attributed to numerous brain functions. Among these, little is known about the mechanism and role of infra-slow oscillations, which have been demonstrated recently in the mouse accessory olfactory bulb (AOB). Along with prolonged responses to stimuli and distinct network connectivity, they inexplicably affect the AOB processing of social relevant stimuli. Here, we show that assemblies of AOB mitral cells are synchronized by lateral interactions through chemical and electrical synapses. Using a network model, we demonstrate that the synchronous oscillations in these assemblies emerge from interplay between intrinsic membrane properties and network connectivity. As a consequence, the AOB network topology, in which each mitral cell receives input from multiple glomeruli, enables integration of chemosensory stimuli over extended time scales by interglomerular synchrony of infra-slow bursting. These results provide a possible functional significance for the distinct AOB physiology and topology. Beyond the AOB, this study presents a general model for synchronous infra-slow bursting in neuronal networks.>SIGNIFICANCE STATEMENT Infra-slow rhythmic neuronal activity with a very long (>10 s) duration has been described in many brain areas, but little is known about the role of this activity and the mechanisms that produce it. Here, we combine experimental and computational methods to show that synchronous infra-slow bursting activity in mitral cells of the mouse accessory olfactory bulb (AOB) emerges from interplay between intracellular dynamics and network connectivity. In this novel mechanism, slow intracellular Na+ dynamics endow AOB mitral cells with a weak tendency to burst, which is further enhanced and stabilized by chemical and electrical synapses between them. Combined with the unique topology of the AOB network, infra-slow bursting enables integration and binding of multiple chemosensory stimuli over a prolonged time scale.
机译:在许多脑区中已经描述了多个频带的节律性神经元活动,并且归因于许多脑功能。其中,关于慢速振荡的机理和作用了解甚少,近来已在鼠标附件嗅球(AOB)中进行了证实。随着对刺激的长期响应以及独特的网络连接,它们莫名其妙地影响了社交相关刺激的AOB处理。在这里,我们显示了AOB二尖瓣细胞的组装是通过化学和电气突触的横向相互作用而同步的。使用网络模型,我们证明了这些组件中的同步振荡是由固有的膜特性和网络连通性之间的相互作用产生的。结果,其中每个二尖瓣细胞接收来自多个肾小球的输入的AOB网络拓扑结构,可通过红外线慢爆发的肾小球间同步在延长的时间范围内整合化学感官刺激。这些结果为独特的AOB生理和拓扑提供了可能的功能意义。除了AOB以外,本研究还提供了神经元网络中同步下慢速爆发的通用模型。>意义声明持续时间很长(> 10 s)的下慢速节律性神经元活动已被许多人描述。大脑区域,但对该活动的作用及其产生机制知之甚少。在这里,我们结合实验和计算方法,以显示鼠标附件嗅球(AOB)的二尖瓣细胞中的同步超慢爆发活动是由细胞内动力学和网络连通性之间的相互作用产生的。在这种新机制中,缓慢的细胞内Na + 动力学赋予AOB二尖瓣细胞爆发力不强,并且通过它们之间的化学和电突触进一步增强和稳定了它。结合AOB网络的独特拓扑结构,超慢脉冲爆发可以在较长的时间范围内整合和绑定多个化学感应刺激。

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