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  4. Linking brain–heart interactions to emotional arousal in immersive virtual reality
 
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2024
Journal Article
Title

Linking brain–heart interactions to emotional arousal in immersive virtual reality

Abstract
The subjective experience of emotions is linked to the contextualized perception and appraisal of changes in bodily (e.g., heart) activity. Increased emotional arousal has been related to attenuated high-frequency heart rate variability (HF-HRV), lower EEG parieto-occipital alpha power, and higher heartbeat-evoked potential (HEP) amplitudes. We studied emotional arousal-related brain–heart interactions using immersive virtual reality (VR) for naturalistic yet controlled emotion induction. Twenty-nine healthy adults (13 women, age: 26 ± 3) completed a VR experience that included rollercoasters while EEG and ECG were recorded. Continuous emotional arousal ratings were collected during a video replay immediately after. We analyzed emotional arousal-related changes in HF-HRV as well as in BHIs using HEPs. Additionally, we used the oscillatory information in the ECG and the EEG to model the directional information flows between the brain and heart activity. We found that higher emotional arousal was associated with lower HEP amplitudes in a left fronto-central electrode cluster. While parasympathetic modulation of the heart (HF-HRV) and parieto-occipital EEG alpha power were reduced during higher emotional arousal, there was no evidence for the hypothesized emotional arousal-related changes in bidirectional information flow between them. Whole-brain exploratory analyses in additional EEG (delta, theta, alpha, beta and gamma) and HRV (low-frequency, LF, and HF) frequency bands revealed a temporo-occipital cluster, in which higher emotional arousal was linked to decreased brain-to-heart (i.e., gamma→HF-HRV) and increased heart-to-brain (i.e., LF-HRV → gamma) information flow. Our results confirm previous findings from less naturalistic experiments and suggest a link between emotional arousal and brain–heart interactions in temporo-occipital gamma power.
Author(s)
Fourcade, Antonin
Max Planck School of Cognition
Klotzsche, Felix
Max Planck Institute for Human Cognitive and Brain Sciences
Hofmann, Simon M.
Fraunhofer-Institut für Nachrichtentechnik, Heinrich-Hertz-Institut HHI  
Mariola, Alberto
University of Sussex
Nikulin, Vadim V.
Max Planck Institute for Human Cognitive and Brain Sciences
Villringer, Arno
Max Planck School of Cognition
Gaebler, Michael
Max Planck Institute for Human Cognitive and Brain Sciences
Journal
Psychophysiology  
Funder
Max-Planck-Gesellschaft
Open Access
DOI
10.1111/psyp.14696
Additional link
Full text
Language
English
Fraunhofer-Institut für Nachrichtentechnik, Heinrich-Hertz-Institut HHI  
Keyword(s)
  • affect

  • computational modeling

  • eeg

  • emotion

  • heart rate variability

  • interoception

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