Javascript must be enabled to continue!
Response inhibition in premotor cortex corresponds to a complex reshuffle of the mesoscopic information network
View through CrossRef
ABSTRACT
Recent studies have explored functional and effective neural networks in animal models; however, the dynamics of information propagation among functional modules under cognitive control remain largely unknown. Here, we addressed the issue using Transfer Entropy and graph theory methods on mesoscopic neural activities recorded in the dorsal premotor cortex of rhesus monkeys. We focused our study on the decision time of a Stop-signal task, looking for patterns in the network configuration that could influence motor plan maturation when the Stop signal is provided. When comparing trials with successful inhibition to those with generated movement, the nodes of the network resulted organized into four clusters, hierarchically arranged, and distinctly involved in information transfer. Interestingly, the hierarchies and the strength of information transmission between clusters varied throughout the task, distinguishing between generated movements and canceled ones and corresponding to measurable levels of network complexity. Our results suggest a putative mechanism for motor inhibition in premotor cortex: a topological reshuffle of the information exchanged among ensembles of neurons.
AUTHOR SUMMARY
In this study, we investigated the dynamics of information transfer among functionally identified neural modules during cognitive motor control. Our focus was on mesoscopic neural activities in the dorsal premotor cortex of rhesus monkeys engaged in a Stop-signal task. Leveraging multivariate Transfer Entropy and graph theory, we uncovered insights on how behavioral control shapes the topology of information transmission in a local brain network. Task phases modulated the strength and hierarchy of information exchange between modules, revealing the nuanced interplay between neural populations during generated and canceled movements. Notably, during successful inhibition, the network displayed a distinctive configuration, unveiling a novel mechanism for motor inhibition in the premotor cortex: a topological reshuffle of information among neuronal ensembles.
Title: Response inhibition in premotor cortex corresponds to a complex reshuffle of the mesoscopic information network
Description:
ABSTRACT
Recent studies have explored functional and effective neural networks in animal models; however, the dynamics of information propagation among functional modules under cognitive control remain largely unknown.
Here, we addressed the issue using Transfer Entropy and graph theory methods on mesoscopic neural activities recorded in the dorsal premotor cortex of rhesus monkeys.
We focused our study on the decision time of a Stop-signal task, looking for patterns in the network configuration that could influence motor plan maturation when the Stop signal is provided.
When comparing trials with successful inhibition to those with generated movement, the nodes of the network resulted organized into four clusters, hierarchically arranged, and distinctly involved in information transfer.
Interestingly, the hierarchies and the strength of information transmission between clusters varied throughout the task, distinguishing between generated movements and canceled ones and corresponding to measurable levels of network complexity.
Our results suggest a putative mechanism for motor inhibition in premotor cortex: a topological reshuffle of the information exchanged among ensembles of neurons.
AUTHOR SUMMARY
In this study, we investigated the dynamics of information transfer among functionally identified neural modules during cognitive motor control.
Our focus was on mesoscopic neural activities in the dorsal premotor cortex of rhesus monkeys engaged in a Stop-signal task.
Leveraging multivariate Transfer Entropy and graph theory, we uncovered insights on how behavioral control shapes the topology of information transmission in a local brain network.
Task phases modulated the strength and hierarchy of information exchange between modules, revealing the nuanced interplay between neural populations during generated and canceled movements.
Notably, during successful inhibition, the network displayed a distinctive configuration, unveiling a novel mechanism for motor inhibition in the premotor cortex: a topological reshuffle of information among neuronal ensembles.
Related Results
Response inhibition in premotor cortex corresponds to a complex reshuffle of the mesoscopic information network
Response inhibition in premotor cortex corresponds to a complex reshuffle of the mesoscopic information network
Abstract
Recent studies have explored functional and effective neural networks in animal models; however, the dynamics of information propagation among functional...
REAKSI PASAR MODAL INDONESIA (BEI) TERHADAP RESHUFFLE KABINET
REAKSI PASAR MODAL INDONESIA (BEI) TERHADAP RESHUFFLE KABINET
The capital market is one of the important financial sector in the economy of a country. The capital market is one of the effective means to facilitate long-term funds held...
Reshuffle-Aware Storage Assignment in Bin Stacking Robotic Warehouses
Reshuffle-Aware Storage Assignment in Bin Stacking Robotic Warehouses
In bin stacking robotic warehouses, bins are stacked vertically to increase storage density and save floorspace. Retrieving a requested bin requires reshuffle any blocking bins abo...
Data-driven neural mass modelling
Data-driven neural mass modelling
The brain is a complex organ whose activity spans multiple scales, both spatial and temporal. The computational unit of the brain is thought to be the neurone. At the microscopic l...
Frontal eye field as defined by intracortical microstimulation in squirrel monkeys, owl monkeys, and macaque monkeys II. cortical connections
Frontal eye field as defined by intracortical microstimulation in squirrel monkeys, owl monkeys, and macaque monkeys II. cortical connections
AbstractPhysiological (intracortical microstimulation) and anatomical (transport of horseradish peroxidase conjugated to wheat germ agglutinin as shown by tetramethyl benzidine) ap...
Transcranial electrical stimulation over premotor cortex mimics attentional modulation of visual processing
Transcranial electrical stimulation over premotor cortex mimics attentional modulation of visual processing
AbstractAttentional control over sensory processing has been linked to neural alpha oscillations and related pulsed inhibition of the human cortex. Despite the wide consensus on th...
Macroscopic Internal Variables and Mesoscopic Theory: A Comparison Considering Liquid Crystals
Macroscopic Internal Variables and Mesoscopic Theory: A Comparison Considering Liquid Crystals
Internal and mesoscopic variables differ fundamentally from each other: both are state space variables, but mesoscopic variables are additionally equipped with a distribution funct...
Macroscopic Internal Variables and Mesoscopic Theory: A Comparison considering Liquid Crystals
Macroscopic Internal Variables and Mesoscopic Theory: A Comparison considering Liquid Crystals
Internal and mesoscopic variables differ from each other fundamentally: both are state space variables, but mesoscopic variables are additional equipped with a distribution functio...

