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皮质细胞集合及其潜在的连接性:一项计算机模拟研究。

Cortical cell assemblies and their underlying connectivity: An in silico study.

作者信息

Ecker András, Egas Santander Daniela, Bolaños-Puchet Sirio, Isbister James B, Reimann Michael W

机构信息

Blue Brain Project, École polytechnique fédérale de Lausanne (EPFL), Campus Biotech, Geneva, Switzerland.

出版信息

PLoS Comput Biol. 2024 Mar 11;20(3):e1011891. doi: 10.1371/journal.pcbi.1011891. eCollection 2024 Mar.

Abstract

Recent developments in experimental techniques have enabled simultaneous recordings from thousands of neurons, enabling the study of functional cell assemblies. However, determining the patterns of synaptic connectivity giving rise to these assemblies remains challenging. To address this, we developed a complementary, simulation-based approach, using a detailed, large-scale cortical network model. Using a combination of established methods we detected functional cell assemblies from the stimulus-evoked spiking activity of 186,665 neurons. We studied how the structure of synaptic connectivity underlies assembly composition, quantifying the effects of thalamic innervation, recurrent connectivity, and the spatial arrangement of synapses on dendrites. We determined that these features reduce up to 30%, 22%, and 10% of the uncertainty of a neuron belonging to an assembly. The detected assemblies were activated in a stimulus-specific sequence and were grouped based on their position in the sequence. We found that the different groups were affected to different degrees by the structural features we considered. Additionally, connectivity was more predictive of assembly membership if its direction aligned with the temporal order of assembly activation, if it originated from strongly interconnected populations, and if synapses clustered on dendritic branches. In summary, reversing Hebb's postulate, we showed how cells that are wired together, fire together, quantifying how connectivity patterns interact to shape the emergence of assemblies. This includes a qualitative aspect of connectivity: not just the amount, but also the local structure matters; from the subcellular level in the form of dendritic clustering to the presence of specific network motifs.

摘要

实验技术的最新进展使得能够同时记录数千个神经元的活动,从而能够研究功能性细胞集合。然而,确定产生这些集合的突触连接模式仍然具有挑战性。为了解决这个问题,我们开发了一种基于模拟的补充方法,使用了一个详细的大规模皮层网络模型。我们结合已有的方法,从186,665个神经元的刺激诱发尖峰活动中检测出功能性细胞集合。我们研究了突触连接结构如何构成集合组成的基础,量化了丘脑神经支配、递归连接以及突触在树突上的空间排列的影响。我们确定,这些特征分别将神经元属于一个集合的不确定性降低了30%、22%和10%。检测到的集合按照特定于刺激的顺序被激活,并根据它们在序列中的位置进行分组。我们发现,不同的组受到我们所考虑的结构特征的影响程度不同。此外,如果连接的方向与集合激活的时间顺序一致、如果它起源于高度相互连接的群体、并且如果突触聚集在树突分支上,那么连接性对集合成员资格的预测性更强。总之,与赫布假设相反,我们展示了连接在一起的细胞如何一起放电,量化了连接模式如何相互作用以塑造集合的出现。这包括连接性的一个定性方面:不仅数量重要,局部结构也很重要;从树突聚类形式的亚细胞水平到特定网络基序的存在。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e1ff/10927091/6e6f77fbb3f8/pcbi.1011891.g001.jpg

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