6533b821fe1ef96bd127b070

RESEARCH PRODUCT

Neural mechanisms of training an auditory event‐related potential task in a brain–computer interface context

Stefan SchulzStefan SchulzAndrea KüblerSebastian HalderTeresa Leinfelder

subject

AdultMalegenetic structureseducationPrefrontal CortexElectroencephalographybehavioral disciplines and activities050105 experimental psychology03 medical and health sciencesSuperior temporal gyrusYoung Adult0302 clinical medicineMotor imagerySupramarginal gyrusParietal LobemedicineHumans0501 psychology and cognitive sciencesRadiology Nuclear Medicine and imagingAttentionResearch ArticlesBrain–computer interfaceCerebral CortexRadiological and Ultrasound Technologymedicine.diagnostic_testFunctional Neuroimaging05 social sciencesMotor CortexPutamenElectroencephalographyTraining effectEvent-Related Potentials P300Magnetic Resonance ImagingTemporal LobeNeurologySuperior frontal gyrusPractice PsychologicalBrain-Computer InterfacesAuditory PerceptionEvoked Potentials AuditoryFemaleNeurology (clinical)AnatomyPsychologyFunctional magnetic resonance imagingNeuroscience030217 neurology & neurosurgerypsychological phenomena and processes

description

Effective use of brain-computer interfaces (BCIs) typically requires training. Improved understanding of the neural mechanisms underlying BCI training will facilitate optimisation of BCIs. The current study examined the neural mechanisms related to training for electroencephalography (EEG)-based communication with an auditory event-related potential (ERP) BCI. Neural mechanisms of training in 10 healthy volunteers were assessed with functional magnetic resonance imaging (fMRI) during an auditory ERP-based BCI task before (t1) and after (t5) three ERP-BCI training sessions outside the fMRI scanner (t2, t3, and t4). Attended stimuli were contrasted with ignored stimuli in the first-level fMRI data analysis (t1 and t5); the training effect was verified using the EEG data (t2-t4); and brain activation was contrasted before and after training in the second-level fMRI data analysis (t1 vs. t5). Training increased the communication speed from 2.9 bits/min (t2) to 4 bits/min (t4). Strong activation was found in the putamen, supplementary motor area (SMA), and superior temporal gyrus (STG) associated with attention to the stimuli. Training led to decreased activation in the superior frontal gyrus and stronger haemodynamic rebound in the STG and supramarginal gyrus. The neural mechanisms of ERP-BCI training indicate improved stimulus perception and reduced mental workload. The ERP task used in the current study showed overlapping activations with a motor imagery based BCI task from a previous study on the neural mechanisms of BCI training in the SMA and putamen. This suggests commonalities between the neural mechanisms of training for both BCI paradigms.

10.1002/hbm.24531https://europepmc.org/articles/PMC6865430/