» Articles » PMID: 37034691

Macroscale Traveling Waves Evoked by Single-pulse Stimulation of the Human Brain

Overview
Journal bioRxiv
Date 2023 Apr 10
PMID 37034691
Authors
Affiliations
Soon will be listed here.
Abstract

Understanding the spatiotemporal dynamics of neural signal propagation is fundamental to unraveling the complexities of brain function. Emerging evidence suggests that cortico-cortical evoked potentials (CCEPs) resulting from single-pulse electrical stimulation may be used to characterize the patterns of information flow between and within brain networks. At present, the basic spatiotemporal dynamics of CCEP propagation cortically and subcortically are incompletely understood. We hypothesized that single-pulse electrical stimulation evokes neural traveling waves detectable in the three-dimensional space sampled by intracranial stereoelectroencephalography. Across a cohort of 21 adult patients with intractable epilepsy, we delivered 17,631 stimulation pulses and recorded CCEP responses in 1,019 electrode contacts. The distance between each pair of electrode contacts was approximated using three different metrics (Euclidean distance, path length, and geodesic distance), representing direct, tractographic, and transcortical propagation, respectively. For each robust CCEP, we extracted amplitude-, spectral-, and phase-based features to identify traveling waves emanating from the site of stimulation. Many evoked responses to stimulation appear to propagate as traveling waves (~14-28%), despite sparse sampling throughout the brain. These stimulation-evoked traveling waves exhibited biologically plausible propagation velocities (range 0.1-9.6 m/s). Our results reveal that direct electrical stimulation elicits neural activity with variable spatiotemporal dynamics, including the initiation of neural traveling waves.

References
1.
Gramfort A, Luessi M, Larson E, Engemann D, Strohmeier D, Brodbeck C . MNE software for processing MEG and EEG data. Neuroimage. 2013; 86:446-60. PMC: 3930851. DOI: 10.1016/j.neuroimage.2013.10.027. View

2.
Miller K, Muller K, Valencia G, Huang H, Gregg N, Worrell G . Canonical Response Parameterization: Quantifying the structure of responses to single-pulse intracranial electrical brain stimulation. PLoS Comput Biol. 2023; 19(5):e1011105. PMC: 10246848. DOI: 10.1371/journal.pcbi.1011105. View

3.
Davis Z, Benigno G, Fletterman C, Desbordes T, Steward C, Sejnowski T . Spontaneous traveling waves naturally emerge from horizontal fiber time delays and travel through locally asynchronous-irregular states. Nat Commun. 2021; 12(1):6057. PMC: 8523565. DOI: 10.1038/s41467-021-26175-1. View

4.
Bernabei J, Li A, Revell A, Smith R, Gunnarsdottir K, Ong I . Quantitative approaches to guide epilepsy surgery from intracranial EEG. Brain. 2023; 146(6):2248-2258. PMC: 10232272. DOI: 10.1093/brain/awad007. View

5.
Valentin A, Anderson M, Alarcon G, Seoane J, Selway R, Binnie C . Responses to single pulse electrical stimulation identify epileptogenesis in the human brain in vivo. Brain. 2002; 125(Pt 8):1709-18. DOI: 10.1093/brain/awf187. View