Identifying properties of pattern completion neurons in a computational model of the visual cortex
-
Published:2023-06-06
Issue:6
Volume:19
Page:e1011167
-
ISSN:1553-7358
-
Container-title:PLOS Computational Biology
-
language:en
-
Short-container-title:PLoS Comput Biol
Author:
Baker Casey M.ORCID,
Gong YiyangORCID
Abstract
Neural ensembles are found throughout the brain and are believed to underlie diverse cognitive functions including memory and perception. Methods to activate ensembles precisely, reliably, and quickly are needed to further study the ensembles’ role in cognitive processes. Previous work has found that ensembles in layer 2/3 of the visual cortex (V1) exhibited pattern completion properties: ensembles containing tens of neurons were activated by stimulation of just two neurons. However, methods that identify pattern completion neurons are underdeveloped. In this study, we optimized the selection of pattern completion neurons in simulated ensembles. We developed a computational model that replicated the connectivity patterns and electrophysiological properties of layer 2/3 of mouse V1. We identified ensembles of excitatory model neurons using K-means clustering. We then stimulated pairs of neurons in identified ensembles while tracking the activity of the entire ensemble. Our analysis of ensemble activity quantified a neuron pair’s power to activate an ensemble using a novel metric called pattern completion capability (PCC) based on the mean pre-stimulation voltage across the ensemble. We found that PCC was directly correlated with multiple graph theory parameters, such as degree and closeness centrality. To improve selection of pattern completion neurons in vivo, we computed a novel latency metric that was correlated with PCC and could potentially be estimated from modern physiological recordings. Lastly, we found that stimulation of five neurons could reliably activate ensembles. These findings can help researchers identify pattern completion neurons to stimulate in vivo during behavioral studies to control ensemble activation.
Funder
National Institute of Neurological Disorders and Stroke
NSF GRFP
Publisher
Public Library of Science (PLoS)
Subject
Computational Theory and Mathematics,Cellular and Molecular Neuroscience,Genetics,Molecular Biology,Ecology,Modeling and Simulation,Ecology, Evolution, Behavior and Systematics
Reference133 articles.
1. Long-term stability of neuronal ensembles in mouse visual cortex.;J Pérez-Ortega;bioRxiv.,2020
2. Imprinting and recalling cortical ensembles;L Carrillo-Reid;Science (80-),2016
3. Internal Dynamics Determine the Cortical Response to Thalamic Stimulation;JN MacLean;Neuron,2005
4. Visual stimuli recruit intrinsically generated cortical ensembles;JEK Miller;Proc Natl Acad Sci U S A,2014
5. Attractor dynamics of network UP states in the neocortex.;R Cossart;Nat 2003 4236937.,2003