Literature DB >> 34401898

Thalamocortical Mechanisms Regulating the Relationship between Transient Beta Events and Human Tactile Perception.

Robert G Law1,2,3, Sarah Pugliese1, Hyeyoung Shin1,4, Danielle D Sliva1, Shane Lee1,5,6, Samuel Neymotin1,7, Christopher Moore1, Stephanie R Jones1,2.   

Abstract

Transient neocortical events with high spectral power in the 15-29 Hz beta band are among the most reliable predictors of sensory perception. Prestimulus beta event rates in primary somatosensory cortex correlate with sensory suppression, most effectively 100-300 ms before stimulus onset. However, the neural mechanisms underlying this perceptual association are unknown. We combined human magnetoencephalography (MEG) measurements with biophysical neural modeling to test potential cellular and circuit mechanisms that underlie observed correlations between prestimulus beta events and tactile detection. Extending prior studies, we found that simulated bursts from higher-order, nonlemniscal thalamus were sufficient to drive beta event generation and to recruit slow supragranular inhibition acting on a 300 ms timescale to suppress sensory information. Further analysis showed that the same beta-generating mechanism can lead to facilitated perception for a brief period when beta events occur simultaneously with tactile stimulation before inhibition is recruited. These findings were supported by close agreement between model-derived predictions and empirical MEG data. The postevent suppressive mechanism explains an array of studies that associate beta with decreased processing, whereas the during-event facilitatory mechanism may demand a reinterpretation of the role of beta events in the context of coincident timing.
© The Author(s) 2021. Published by Oxford University Press.

Entities:  

Keywords:  beta rhythm; event-related potential; magnetoencephalography; neural modeling; tactile detection

Mesh:

Year:  2022        PMID: 34401898      PMCID: PMC8841599          DOI: 10.1093/cercor/bhab221

Source DB:  PubMed          Journal:  Cereb Cortex        ISSN: 1047-3211            Impact factor:   5.357


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