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海马树突内细胞内振荡的功能结构。

Functional architecture of intracellular oscillations in hippocampal dendrites.

机构信息

Department of Neuroscience, Columbia University, New York, USA.

Mortimer B. Zuckerman Mind Brain Behavior Institute, Columbia University, New York, USA.

出版信息

Nat Commun. 2024 Jul 26;15(1):6295. doi: 10.1038/s41467-024-50546-z.

Abstract

Fast electrical signaling in dendrites is central to neural computations that support adaptive behaviors. Conventional techniques lack temporal and spatial resolution and the ability to track underlying membrane potential dynamics present across the complex three-dimensional dendritic arbor in vivo. Here, we perform fast two-photon imaging of dendritic and somatic membrane potential dynamics in single pyramidal cells in the CA1 region of the mouse hippocampus during awake behavior. We study the dynamics of subthreshold membrane potential and suprathreshold dendritic events throughout the dendritic arbor in vivo by combining voltage imaging with simultaneous local field potential recording, post hoc morphological reconstruction, and a spatial navigation task. We systematically quantify the modulation of local event rates by locomotion in distinct dendritic regions, report an advancing gradient of dendritic theta phase along the basal-tuft axis, and describe a predominant hyperpolarization of the dendritic arbor during sharp-wave ripples. Finally, we find that spatial tuning of dendritic representations dynamically reorganizes following place field formation. Our data reveal how the organization of electrical signaling in dendrites maps onto the anatomy of the dendritic tree across behavior, oscillatory network, and functional cell states.

摘要

树突中的快速电信号对于支持自适应行为的神经计算至关重要。传统技术缺乏时间和空间分辨率,并且无法跟踪体内复杂的三维树突树中存在的潜在膜动力学。在这里,我们在清醒行为期间对 CA1 区的单个锥体神经元中的树突和体细胞膜电位动力学进行快速双光子成像。我们通过将电压成像与同时进行的局部场电位记录、事后形态重建和空间导航任务相结合,研究了体内整个树突中亚阈膜电位和阈上树突事件的动力学。我们系统地量化了运动在不同树突区域对局部事件率的调制,报告了沿基底-树突轴的树突θ相位的推进梯度,并描述了在尖峰涟漪期间树突的主要超极化。最后,我们发现树突表示的空间调谐在形成位置场后会动态地重新组织。我们的数据揭示了在行为、振荡网络和功能细胞状态下,树突中电信号的组织如何映射到树突树的解剖结构上。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a5d6/11282248/e591273b998c/41467_2024_50546_Fig1_HTML.jpg

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