Abstract

Deep brain stimulation is a brain circuit intervention that can modulate distinct neural pathways for the alleviation of neurological symptoms in patients with brain disorders. In Parkinson's disease, subthalamic deep brain stimulation clinically mimics the effect of dopaminergic drug treatment, but the shared pathway mechanisms on cortex - basal ganglia networks are unknown. To address this critical knowledge gap, we combined fully invasive neural multisite recordings in patients undergoing deep brain stimulation surgery with normative MRI-based whole-brain connectomics. Our findings demonstrate that dopamine and stimulation exert distinct mesoscale effects through modulation of local neural population activity. In contrast, at the macroscale, stimulation mimics dopamine in its suppression of excessive interregional network synchrony associated with indirect and hyperdirect cortex - basal ganglia pathways. Our results provide a better understanding of the circuit mechanisms of dopamine and deep brain stimulation, laying the foundation for advanced closed-loop neurostimulation therapies.

Competing Interest Statement

A.A.K. reports personal fees from Medtronic and Boston Scientific. G.-H.S. reports personal fees from Medtronic, Boston Scientific, and Abbott. W.-J.N. serves as consultant to InBrain and reports personal fees from Medtronic.

Footnotes

* Introduction text updated. Results text updated. Figure 4 updated. Methods text updated. Supplementary Figure 5 updated. Supplementary Figure 7 updated. New Supplementary Tables 3-10 added.

Details

Title
Shared pathway-specific network mechanisms of dopamine and deep brain stimulation for the treatment of Parkinson's disease
Author
Binns, Thomas S; Köhler, Richard M; Vanhoecke, Jojo; Chikermane, Meera; Gerster, Moritz; Merk, Timon; Pellegrini, Franziska; Busch, Johannes L; Habets, Jeroen Gv; Cavallo, Allesia; Beyer, Jean-Christin; Al-Fatly, Bassam; Li, Ningfei; Horn, Andreas; Krause, Patricia; Faust, Katharina; Schneider, Gerd-Helge; Haufe, Stefan; Kühn, Andrea A; Wolf-Julian Neumann
University/institution
Cold Spring Harbor Laboratory Press
Section
New Results
Publication year
2025
Publication date
Jan 13, 2025
Publisher
Cold Spring Harbor Laboratory Press
ISSN
2692-8205
Source type
Working Paper
Language of publication
English
ProQuest document ID
3154980585
Copyright
© 2025. This article is published under http://creativecommons.org/licenses/by/4.0/ (“the License”). Notwithstanding the ProQuest Terms and Conditions, you may use this content in accordance with the terms of the License.