Search bioRxivSearch

Biology subjects

Aron, A. R.

Publications and source records attributed to Aron, A. R..

2 recordsLinked to original sources

Temporally-precise disruption of prefrontal cortex informed by the timing of beta bursts impairs human action-stopping

Human action-stopping is thought to rely on a prefronto-basal ganglia-thalamocortical network, with right inferior frontal cortex (rIFC) posited to play a critical role in the early stage of implementation. Here we sought causal evidence for this idea in experiments involving healthy human participants. We first show that action-stopping is preceded by bursts of electroencephalographic activity in the beta band over prefrontal electrodes, putatively rIFC, and that the timing of these bursts correlates with the latency of stopping at a single-trial level: earlier bursts are associated with faster stopping. From this we reasoned that the integrity of rIFC at the time of beta bursts might be critical to successful stopping. We then used fMRI-guided transcranial magnetic stimulation (TMS) to disrupt rIFC at the approximate time of beta bursting. Stimulation prolonged stopping latencies and, moreover, the prolongation was most pronounced in individuals for whom the pulse appeared closer to the presumed time of beta bursting. These results help validate a model of the neural architecture and temporal dynamics of action-stopping. They also highlight the usefulness of prefrontal beta bursts to index an apparently important sub-process of stopping, the timing of which might help explain within- and between-individual variation in impulse control.

neuroscience

Temporal cascade of frontal, motor and muscle processes underlying human action-stopping

Action-stopping is a canonical executive function thought to involve top-down control over the motor system. Here we aimed to validate this stopping system using high temporal resolution methods in humans. We show that, following the requirement to stop, there was an increase of right frontal beta ([~]13 to 30 Hz) at [~]120 ms, likely a proxy of right inferior frontal gyrus; then, at 140 ms, there was a broad skeletomotor suppression, likely reflecting the impact of the subthalamic nucleus on basal ganglia output; then, at [~]160 ms, suppression was detected in the muscle, and, finally, the behavioral time of stopping was [~]220 ms. This temporal cascade confirms a detailed model of action-stopping, and partitions it into subprocesses that are isolable to different nodes and are more precise than the behavioral speed of stopping. Variation in these subprocesses, including at the single-trial level, could better explain individual differences in impulse control.

neuroscience