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Transcranial Magnetic Stimulation‐Induced Modulation of Functional Connectivity in Healthy Controls: A TMS–EEG Graph Study
Transcranial Magnetic Stimulation‐Induced Modulation of Functional Connectivity in Healthy Controls: A TMS–EEG Graph Study
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Transcranial Magnetic Stimulation‐Induced Modulation of Functional Connectivity in Healthy Controls: A TMS–EEG Graph Study
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Transcranial Magnetic Stimulation‐Induced Modulation of Functional Connectivity in Healthy Controls: A TMS–EEG Graph Study
Transcranial Magnetic Stimulation‐Induced Modulation of Functional Connectivity in Healthy Controls: A TMS–EEG Graph Study

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Transcranial Magnetic Stimulation‐Induced Modulation of Functional Connectivity in Healthy Controls: A TMS–EEG Graph Study
Transcranial Magnetic Stimulation‐Induced Modulation of Functional Connectivity in Healthy Controls: A TMS–EEG Graph Study
Journal Article

Transcranial Magnetic Stimulation‐Induced Modulation of Functional Connectivity in Healthy Controls: A TMS–EEG Graph Study

2025
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Overview
Introduction The combination of transcranial magnetic stimulation (TMS) and electroencephalography (EEG) enables direct interaction with the brain while recording the resulting neural activity, offering a unique opportunity to understand the brain's functional dynamics. In this study, TMS–EEG was employed to examine the effects of TMS on functional network connectivity through graph theory parameters. Methods A total of 29 healthy controls underAuthor: Please check funding information and confirm its correctness.went a single‐pulse TMS–EEG protocol targeting the dorsolateral prefrontal cortex. Three graph theory parameters summarizing functional network properties (i.e., connectivity strength, clustering coefficient, and characteristic path length) were analyzed before and after TMS application. Results TMS‐single pulse administration over the dorsolateral prefrontal cortex of healthy controls was associated with a significant increase in connectivity strength and clustering coefficient, and a significant decrease in the characteristic path length parameters. These changes are consistent with a shift towards a small‐world network organization. Conclusion These findings provide insight into the neurophysiological mechanisms underlying TMS‐induced changes and could have potential therapeutic implications. TMS was associated with a modulation of functional network connectivity. TMS modulation effects seem to reflect a change into a small‐world organization. EEG‐based brain graphs contribute to understand TMS neurophysiological basis.