TY - JOUR
T1 - Parkinson’s disease as a somato-cognitive action network disorder
AU - Ren, Jianxun
AU - Zhang, Wei
AU - Dahmani, Louisa
AU - Gordon, Evan M.
AU - Li, Shenshen
AU - Zhou, Ying
AU - Long, Yang
AU - Huang, Jianting
AU - Zhu, Yafei
AU - Guo, Ning
AU - Jiang, Changqing
AU - Zhang, Feng
AU - Bai, Yan
AU - Wei, Wei
AU - Wu, Yaping
AU - Bush, Alan
AU - Vissani, Matteo
AU - Wei, Luhua
AU - Oehrn, Carina R.
AU - Morrison, Melanie A.
AU - Zhu, Ying
AU - Zhang, Chencheng
AU - Hu, Qingyu
AU - Yin, Yilin
AU - Cui, Weigang
AU - Fu, Xiaoxuan
AU - Zhang, Ping
AU - Wang, Weiwei
AU - Ji, Gong Jun
AU - He, Ji
AU - Wang, Kai
AU - Fan, Dongsheng
AU - Wang, Zhaoxia
AU - Kimberley, Teresa
AU - Little, Simon
AU - Starr, Philip A.
AU - Richardson, Robert Mark
AU - Li, Luming
AU - Wang, Meiyun
AU - Wang, Danhong
AU - Dosenbach, Nico U.F.
AU - Liu, Hesheng
N1 - Publisher Copyright:
© The Author(s) 2026.
PY - 2026/3/26
Y1 - 2026/3/26
N2 - Parkinson’s disease (PD) is an incurable neurological disorder that often begins insidiously with sleep disturbances and somatic symptoms, progressing to whole-body motor and cognitive symptoms1, 2, 3, 4–5. Dysfunction of the somato-cognitive action network (SCAN)—which is thought to control action execution6,7 by coordinating arousal, organ physiology and whole-body motor plans with behavioural motivation—is a potential contributor to the diverse clinical manifestations of PD. To investigate the role of the SCAN in PD pathophysiology and treatments (medications, deep-brain stimulation (DBS), transcranial magnetic stimulation (TMS) and MRI-guided focused ultrasound stimulation (MRgFUS)), we built a large (n = 863), multimodal, multi-intervention clinical imaging dataset. Resting-state functional connectivity revealed that the substantia nigra and all PD DBS targets (subthalamic nucleus, globus pallidus and ventral intermediate thalamus) are selectively connected to the SCAN rather than to effector-specific motor regions. Importantly, PD was characterized by specific hyperconnectivity between the SCAN and the subcortex. We therefore followed six PD cohorts undergoing DBS, TMS, MRgFUS and levodopa therapy using precision resting-state functional connectivity and electrocorticography recording. Efficacious treatments reduced SCAN-to-subcortex hyperconnectivity. Targeting the SCAN instead of effector regions doubled the efficacy of TMS treatments. Focused ultrasound treatment benefits increased when the target was closer to the thalamic SCAN sweet spot. Thus, SCAN hyperconnectivity is central to PD pathophysiology and its alleviation is a hallmark of successful neuromodulation. Targeting functionally defined subcortical SCAN nodes may improve existing therapies (DBS, MRgFUS), whereas cortical SCAN targets offer effective non-invasive or minimally invasive neuromodulation for PD.
AB - Parkinson’s disease (PD) is an incurable neurological disorder that often begins insidiously with sleep disturbances and somatic symptoms, progressing to whole-body motor and cognitive symptoms1, 2, 3, 4–5. Dysfunction of the somato-cognitive action network (SCAN)—which is thought to control action execution6,7 by coordinating arousal, organ physiology and whole-body motor plans with behavioural motivation—is a potential contributor to the diverse clinical manifestations of PD. To investigate the role of the SCAN in PD pathophysiology and treatments (medications, deep-brain stimulation (DBS), transcranial magnetic stimulation (TMS) and MRI-guided focused ultrasound stimulation (MRgFUS)), we built a large (n = 863), multimodal, multi-intervention clinical imaging dataset. Resting-state functional connectivity revealed that the substantia nigra and all PD DBS targets (subthalamic nucleus, globus pallidus and ventral intermediate thalamus) are selectively connected to the SCAN rather than to effector-specific motor regions. Importantly, PD was characterized by specific hyperconnectivity between the SCAN and the subcortex. We therefore followed six PD cohorts undergoing DBS, TMS, MRgFUS and levodopa therapy using precision resting-state functional connectivity and electrocorticography recording. Efficacious treatments reduced SCAN-to-subcortex hyperconnectivity. Targeting the SCAN instead of effector regions doubled the efficacy of TMS treatments. Focused ultrasound treatment benefits increased when the target was closer to the thalamic SCAN sweet spot. Thus, SCAN hyperconnectivity is central to PD pathophysiology and its alleviation is a hallmark of successful neuromodulation. Targeting functionally defined subcortical SCAN nodes may improve existing therapies (DBS, MRgFUS), whereas cortical SCAN targets offer effective non-invasive or minimally invasive neuromodulation for PD.
UR - https://www.scopus.com/pages/publications/105029216840
U2 - 10.1038/s41586-025-10059-1
DO - 10.1038/s41586-025-10059-1
M3 - Article
C2 - 41639440
AN - SCOPUS:105029216840
SN - 0028-0836
VL - 651
SP - 1030
EP - 1038
JO - Nature
JF - Nature
IS - 8107
ER -