Cortical activation pattern during shoulder simple versus vibration exercises: a functional near infrared
Sung Ho Jang1, Sang Seok Yeo2, Seung Hyun Lee3
1Department of Physical Medicine and Rehabilitation, College of Medicine, Yeungnam University, Daegu, Republic of Korea.
Shoulder vibration exercise activates motor areas more than simple exercise, particularly in the leg and trunk regions of the primary sensory-motor cortex. This suggests vibration exercise offers broader cortical engagement.
Area of Science:
- Neuroscience
- Exercise Physiology
- Motor Control
Background:
- The cortical impact of exercise remains incompletely understood.
- Functional near-infrared spectroscopy (fNIRS) offers a non-invasive method to study brain activity during physical tasks.
Purpose of the Study:
- To compare the cortical effects of shoulder vibration exercise versus simple shoulder exercise.
- To investigate brain activation patterns using fNIRS.
Main Methods:
- Eight healthy subjects performed two tasks: shoulder vibration exercise and simple shoulder exercise, in a block design.
- Oxygenated hemoglobin levels were measured in the primary sensory-motor cortex (SM1), premotor cortex, supplementary motor area, and prefrontal cortex using fNIRS.
- Analysis focused on SM1 subregions: total, arm somatotopy, and leg/trunk somatotopy.
Main Results:
- Both exercises induced cortical activation across motor and prefrontal areas.
- Higher oxygenated hemoglobin was noted in the arm somatotopy of SM1 for both exercises.
- Shoulder vibration exercise showed significantly greater activation in the leg and trunk somatotopy of SM1 compared to simple exercise.
Conclusions:
- Both shoulder vibration and simple shoulder exercises activate relevant motor cortical areas, especially the arm representation in SM1.
- Shoulder vibration exercise provides an additional cortical activation benefit in the leg and trunk representation of SM1.
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