Impact of higher order network structure on emergent cortical activity

Author:

Nolte Max1ORCID,Gal Eyal23ORCID,Markram Henry14,Reimann Michael W.1ORCID

Affiliation:

1. Blue Brain Project, École Polytechnique Fédérale de Lausanne, Geneva, Switzerland

2. Edmond and Lily Safra Center for Brain Sciences, The Hebrew University, Jerusalem, Israel

3. Department of Neurobiology, The Hebrew University, Jerusalem, Israel

4. Laboratory of Neural Microcircuitry, Brain Mind Institute, École Polytechnique Fédérale de Lausanne, Lausanne, Switzerland

Abstract

Synaptic connectivity between neocortical neurons is highly structured. The network structure of synaptic connectivity includes first-order properties that can be described by pairwise statistics, such as strengths of connections between different neuron types and distance-dependent connectivity, and higher order properties, such as an abundance of cliques of all-to-all connected neurons. The relative impact of first- and higher order structure on emergent cortical network activity is unknown. Here, we compare network structure and emergent activity in two neocortical microcircuit models with different synaptic connectivity. Both models have a similar first-order structure, but only one model includes higher order structure arising from morphological diversity within neuronal types. We find that such morphological diversity leads to more heterogeneous degree distributions, increases the number of cliques, and contributes to a small-world topology. The increase in higher order network structure is accompanied by more nuanced changes in neuronal firing patterns, such as an increased dependence of pairwise correlations on the positions of neurons in cliques. Our study shows that circuit models with very similar first-order structure of synaptic connectivity can have a drastically different higher order network structure, and suggests that the higher order structure imposed by morphological diversity within neuronal types has an impact on emergent cortical activity.

Funder

The Swiss government’s ETH Board of the Swiss Federal Institutes of Technology

Drahi Family Foundation

EU Horizon 2020 program

École Polytechnique Fédérale de Lausanne

Publisher

MIT Press - Journals

Subject

Applied Mathematics,Artificial Intelligence,Computer Science Applications,General Neuroscience

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