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research article

Heterogeneous and higher-order cortical connectivity undergirds efficient, robust, and reliable neural codes

Egas Santander, Daniela  
•
Pokorny, Christoph  
•
Ecker, András  
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January 17, 2025
iScience

To distinguish between subpopulations, we developed a metric based on the mathematical theory of simplicial complexes that captures the complexity of their connectivity by contrasting its higher-order structure to a random control and confirmed its relevance in several openly available connectomes. Using a biologically detailed cortical model and an electron microscopic dataset, we showed that subpopulations with low simplicial complexity exhibit efficient activity. Conversely, subpopulations of high simplicial complexity play a supporting role in boosting the reliability of the network as a whole, softening the robustness-efficiency tradeoff. Crucially, we found that both types of subpopulations can and do coexist within a single connectome in biological neural networks, due to the heterogeneity of their connectivity.

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10.1016_j.isci.2024.111585.pdf

Type

Main Document

Version

Submitted version (Preprint)

Access type

openaccess

License Condition

CC BY

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4.13 MB

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Adobe PDF

Checksum (MD5)

614055cae4ccc331688b00afb8933c33

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