Neuromotor modules revealed by direct electrical stimulation of the human primary motor cortex
成果类型:
Article
署名作者:
Xie, Jodie J.; Huang, Subing; Lau, Kelvin Y. S.; Kong, Amy H. S.; Chan, Rosa H. M.; Woo, Peter Y. M.; Cheung, Vincent C. K.
署名单位:
Chinese University of Hong Kong; Chinese University of Hong Kong; City University of Hong Kong; Kwong Wah Hospital; Prince of Wales Hospital Hong Kong; Kwong Wah Hospital; Chinese University of Hong Kong; Chinese Academy of Sciences; Chinese University of Hong Kong
刊物名称:
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA
ISSN/ISSBN:
0027-8424; 1091-6490
DOI:
10.1073/pnas.2604933123
发表日期:
2026-09-15
页码:
e2604933123
关键词:
muscle synergy
surface electromyography
primary motor cortex
neurosurgery
TRANSCRANIAL MAGNETIC STIMULATION
HAND MUSCLE SYNERGIES
spinal-cord
CORTICOMOTONEURONAL CELLS
FORELIMB REPRESENTATION
AWAKE CRANIOTOMY
high-frequency
neural basis
microstimulation
primitives
摘要:
Muscle synergies extracted from multimuscle electromyographic (EMG) signals are widely interpreted as fundamental building blocks of motor control that coordinate groups of muscles during movement. Whether EMG-derived muscle synergies represent genuine neurally encoded modules or motor regularities arising from task or biomechanical constraints has been hotly debated because neurophysiological data that definitively demonstrate the neural basis of muscle synergies in humans have been lacking. Here, we seek to validate the potential neural origin of upper limb muscle synergies by exploiting direct electrical stimulation (DES) of the primary motor cortex (M1) routinely delivered by neurosurgeons during awake craniotomy surgery for glioma excision. Across 13 patients, 69% of the muscle synergies observed during preoperative voluntary behaviors could be matched to DES-evoked muscle synergies or their combination. Analysis of the synergies' cortical activity maps further revealed that the cortical representations of the sparser muscle synergies were more anterior and distributed, and those of the nonsparse synergies, more posterior and localized. Our results not only provide direct causal evidence arguing for the neural origin of most behavioral muscle synergies in humans but also demonstrate the potential existence of two M1 subdivisions with distinct patterns of muscle synergy organization.
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