Related Experiment Video
Updated: Apr 17, 2026

Utilizing Transcranial Magnetic Stimulation to Study the Human Neuromuscular System
Published on: January 20, 2012
Bilateral force transients in the upper limbs evoked by single-pulse microstimulation in the pontomedullary reticular
Thomas J Hirschauer1, John A Buford2
1Neuroscience Graduate Program, The Ohio State University, Columbus, Ohio; and.
Abstract:
Neurons in the pontomedullary reticular formation (PMRF) give rise to the reticulospinal tract. The motor output of the PMRF was investigated using stimulus-triggered averaging of electromyography (EMG) and force recordings in two monkeys (M. fascicularis). EMG was recorded from 12 pairs of upper limb muscles, and forces were detected using two isometric force-sensitive handles. Of 150 stimulation sites, 105 (70.0%) produced significant force responses, and 139 (92.5%) produced significant EMG responses. Based on the average flexor EMG onset latency of 8.3 ms and average force onset latency of 15.9 ms poststimulation, an electromechanical delay of ∼7.6 ms was calculated. The magnitude of force responses (∼10 mN) was correlated with the average change in EMG activity (P < 0.001). A multivariate linear regression analysis was used to estimate the contribution of each muscle to force generation, with flexors and extensors exhibiting antagonistic effects. A predominant force output pattern of ipsilateral flexion and contralateral extension was observed in response to PMRF stimulation, with 65.3% of significant ipsilateral force responses directed medially and posteriorly (P < 0.001) and 78.6% of contralateral responses directed laterally and anteriorly (P < 0.001). This novel approach permits direct measurement of force outputs evoked by central nervous system microstimulation. Despite the small magnitude of poststimulus EMG effects, low-intensity single-pulse microstimulation of the PMRF evoked detectable forces. The forces, showing the combined effect of all muscle activity in the arms, are consistent with reciprocal pattern of force outputs from the PMRF detectable with stimulus-triggered averaging of EMG.
Insights
Neurons in the pontomedullary reticular formation (PMRF) generate motor commands. Microstimulation revealed distinct patterns of muscle activation and force generation in the arms, influencing movement direction.
Area of Science:
- Neuroscience
- Motor Control
- Systems Neuroscience
Background:
- The pontomedullary reticular formation (PMRF) is crucial for motor control, projecting the reticulospinal tract.
- Understanding PMRF's direct motor output is essential for deciphering neural control of movement.
Purpose of the Study:
- To investigate the motor output of the PMRF by measuring electromyography (EMG) and force responses.
- To characterize the relationship between PMRF stimulation and evoked muscle activity and limb forces.
Main Methods:
- Utilized stimulus-triggered averaging of EMG and force recordings in two macaque monkeys.
- Stimulated 150 sites in the PMRF, recording from 12 upper limb muscle pairs and isometric force handles.
- Calculated electromechanical delay and used multivariate linear regression to analyze muscle contributions to force.
Main Results:
- Significant force and EMG responses were evoked from 70.0% and 92.5% of stimulation sites, respectively.
- An electromechanical delay of approximately 7.6 ms was calculated.
- PMRF stimulation induced ipsilateral flexion and contralateral extension, with specific directional force patterns observed.
Conclusions:
- Low-intensity PMRF microstimulation evokes detectable forces, reflecting the combined muscle activity in the arms.
- The study demonstrates a novel method for directly measuring motor outputs from central nervous system microstimulation.
- Observed force patterns are consistent with a reciprocal output from the PMRF, providing insights into motor control mechanisms.
Related Concept Videos
Muscle Stimulation Frequency
Wave summation
At low firing rates, motor neurons induce individual twitch contractions in muscle fibers. These twitches...
Motor Unit Stimulation
The latent period of contraction marks the onset of excitation-contraction coupling, when the action potential propagates across the sarcolemma, preparing the muscle fibers for contraction. As the fibers enter the contraction phase, the...

