Interplay between persistent activity and activity-silent dynamics in the prefrontal cortex underlies serial biases in working memory

被引:0
|
作者
Joao Barbosa
Heike Stein
Rebecca L. Martinez
Adrià Galan-Gadea
Sihai Li
Josep Dalmau
Kirsten C. S. Adam
Josep Valls-Solé
Christos Constantinidis
Albert Compte
机构
[1] Institut d’Investigacions Biomèdiques August Pi i Sunyer (IDIBAPS),Department of Neurobiology and Anatomy
[2] Wake Forest School of Medicine,Service of Neurology
[3] Hospital Clínic,Department of Neurology
[4] University of Barcelona,Department of Psychology and Institute for Neural Computation
[5] ICREA,undefined
[6] University of Pennsylvania,undefined
[7] University of California San Diego,undefined
来源
Nature Neuroscience | 2020年 / 23卷
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摘要
Persistent neuronal spiking has long been considered the mechanism underlying working memory, but recent proposals argue for alternative ‘activity-silent’ substrates. Using monkey and human electrophysiology data, we show here that attractor dynamics that control neural spiking during mnemonic periods interact with activity-silent mechanisms in the prefrontal cortex (PFC). This interaction allows memory reactivations, which enhance serial biases in spatial working memory. Stimulus information was not decodable between trials, but remained present in activity-silent traces inferred from spiking synchrony in the PFC. Just before the new stimulus, this latent trace was reignited into activity that recapitulated the previous stimulus representation. Importantly, the reactivation strength correlated with the strength of serial biases in both monkeys and humans, as predicted by a computational model that integrates activity-based and activity-silent mechanisms. Finally, single-pulse transcranial magnetic stimulation applied to the human PFC between successive trials enhanced serial biases, thus demonstrating the causal role of prefrontal reactivations in determining working-memory behavior.
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页码:1016 / 1024
页数:8
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