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抑制性神经元的功能网络协调海马体中的同步性。

Functional networks of inhibitory neurons orchestrate synchrony in the hippocampus.

机构信息

Aix Marseille, University, Inserm, INMED, Turing Center for Living Systems, Marseille, France.

Department of Psychology, Durham University, Durham, United Kingdom.

出版信息

PLoS Biol. 2024 Oct 14;22(10):e3002837. doi: 10.1371/journal.pbio.3002837. eCollection 2024 Oct.

Abstract

Inhibitory interneurons are pivotal components of cortical circuits. Beyond providing inhibition, they have been proposed to coordinate the firing of excitatory neurons within cell assemblies. While the roles of specific interneuron subtypes have been extensively studied, their influence on pyramidal cell synchrony in vivo remains elusive. Employing an all-optical approach in mice, we simultaneously recorded hippocampal interneurons and pyramidal cells and probed the network influence of individual interneurons using optogenetics. We demonstrate that CA1 interneurons form a functionally interconnected network that promotes synchrony through disinhibition during awake immobility, while preserving endogenous cell assemblies. Our network model underscores the importance of both cell assemblies and dense, unspecific interneuron connectivity in explaining our experimental findings, suggesting that interneurons may operate not only via division of labor but also through concerted activity.

摘要

抑制性中间神经元是皮质回路的关键组成部分。除了提供抑制作用外,它们还被提议协调细胞集合内兴奋性神经元的发射。虽然特定中间神经元亚型的作用已经得到了广泛的研究,但它们对体内锥体神经元同步性的影响仍然难以捉摸。我们在小鼠中采用全光学方法,同时记录海马中间神经元和锥体细胞,并使用光遗传学探测单个中间神经元对网络的影响。我们证明 CA1 中间神经元形成一个功能上相互连接的网络,在清醒不动期间通过去抑制促进同步,同时保持内源性细胞集合。我们的网络模型强调了细胞集合和密集、非特异性中间神经元连接性在解释我们的实验结果方面的重要性,表明中间神经元不仅可以通过分工运作,还可以通过协调活动来运作。

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