A major challenge in systems neuroscience is understanding how external perturbations interact with ongoing brain activity. Transcranial magnetic stimulation (TMS), increasingly used in both basic and clinical neuroscience and often combined with electroencephalography (EEG), provides a unique opportunity to probe this interaction. However, how intrinsic dynamics constrain the propagation of TMS-evoked activity remains poorly understood. In particular, effective connectivity (EC)—capturing directed, state-dependent interactions between brain regions—is thought to critically shape perturbational spread, yet remains difficult to estimate at the whole-brain EEG level. Here we introduce an analytically tractable, generative whole-brain model that links spontaneous EEG activity to cortical responses under perturbation. By deriving a closed-form expression for the model’s cross-spectral density, we directly fit empirical resting-state EEG spectra and infer biophysically interpretable local dynamical parameters without time-domain simulations. We then estimate stimulation-site-specific EC using only a small fraction of the TMS–EEG trials. The resulting model accurately predicts the spatiotemporal structure of TMS-evoked potentials (TEPs) in unseen trials. Moreover, even without subject-specific refitting, group-level EC templates capture canonical site-specific propagation motifs underlying single-subject early TMS responses. Together, our results establish an analytical framework for individualized whole-brain modeling of TMS-EEG with potential applicability to model-based neuromodulation.
Transcranial magnetic stimulation (TMS) enables non-invasive, focal modulation of cortical circuits by inducing electric currents in the brain through electromagnetic induction, thereby influencing neuronal excitability and synaptic plasticity. High inter- and intra-individual variability has led, however, to moderate...
M. Null, Elena Mongiardini, Chiara Leu et al.· Bioengineering· 0 citations
Understanding how spontaneous, rather than experimentally induced, thoughts relate to brain activity remains a major challenge. We combined simultaneous fMRI and EEG recordings with Descriptive Experience Sampling (DES) to link momentary, naturally occurring experiences to their neural signatures during rest. Using m...
Tomáš Hampejs, D. Tomeček, Stanislav Jiříček et al.· Scientific Reports· 0 citations
OBJECTIVE
Clinical mapping studies in epilepsy and brain tumor surgery have informed neurobiological models of speech. However, a comprehensive model requires clarification of when, for how long, and in what directions cortical regions transmit information to support processes ranging from perception and comprehension...
Ryuzaburo Kochi, Aya Kanno, Hiroshi Uda et al.· NeuroImage· 0 citations
Reliable noninvasive measurement of human brainstem activity during motor control remains challenging due to small anatomical structures and physiological noise, yet it is essential for understanding descending contributions to rapid feedback control. We used brainstem-optimized whole brain functional magnetic resona...
Rebecca C. Nikonowicz, Neha A. Reddy, Michelle C. Medina et al.· Imaging Neuroscience· 0 citations
Scientists have long sought to understand the biological basis and function of diverse thoughts through various lenses, emphasizing aspects of content, affect, sensory experience, and process. An often-missing piece to this search is the investigation of the neural correlates of thought from a dynamic framework, partic...
Lotus Shareef-Trudeau, Aaron K. Kucyi· 0 citations
BACKGROUND
Transcranial magnetic stimulation-evoked potentials (TEPs) propagate from the stimulation site to distributed brain networks, with early propagation thought to occur predominantly through feedforward processes and later propagation through recurrent processes. We employed pharmacological manipulation to prob...
Zhong-Fei Bai, P. Belardinelli, P. Gordon et al.· Brain Stimulation· 0 citations
We use cookies to run the site and, with your consent, for analytics and to show ads.
See our Cookie Policy.