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Intermuscular Coherence in Normal Adults: Variability and Changes with Age
Stephan R Jaiser1,2, Mark R Baker1,2,3, Stuart N Baker1
1Institute of Neuroscience, Medical School, Newcastle University, Newcastle upon Tyne, United Kingdom.
Insights
Beta-band intermuscular coherence (IMC) remains stable across adult lifespan, showing no age-related decline. High variability exists between and within individuals, suggesting factors beyond aging influence neural coupling.
Area of Science:
- Neuroscience
- Motor Control
- Human Physiology
Background:
- Intermuscular coherence (IMC) reflects neural control of muscle activity.
- Understanding age-related changes in IMC is crucial for assessing nervous system health.
Purpose of the Study:
- To investigate age-related changes in beta-band IMC in healthy adults.
- To analyze inter- and intra-individual variability in IMC.
- To establish a normative dataset for IMC.
Main Methods:
- Measured beta-band IMC in upper and lower limbs of 92 healthy adults across six decades.
- Analyzed age as a continuous and binned variable.
- Assessed intrasession and intersession variance in IMC.
Main Results:
- No significant age-related changes in IMC amplitude were observed.
- Interindividual variability in IMC was substantial (two orders of magnitude).
- Intrasession and intersession variance exceeded statistical expectations, indicating other contributing factors.
Conclusions:
- Beta-band IMC is robust to aging, suggesting preserved neural coupling mechanisms.
- High variability necessitates further investigation into influencing factors.
- The study provides a normative IMC dataset for potential use as a biomarker in neurological diseases.
Abstract:
We investigated beta-band intermuscular coherence (IMC) in 92 healthy adults stratified by decade of age, and analysed variability between and within subjects. In the dominant upper limb, IMC was estimated between extensor digitorum communis and first dorsal interosseous as well as between flexor digitorum superficialis and first dorsal interosseous. In the ipsilateral lower limb, IMC was measured between medial gastrocnemius and extensor digitorum brevis as well as between tibialis anterior and extensor digitorum brevis. Age-related changes in IMC were analysed with age as a continuous variable or binned by decade. Intrasession variance of IMC was examined by dividing sessions into pairs of epochs and comparing coherence estimates between these pairs. Eight volunteers returned for a further session after one year, allowing us to compare intrasession and intersession variance. We found no age-related changes in IMC amplitude across almost six decades of age, allowing us to collate data from all ages into an aggregate normative dataset. Interindividual variability ranged over two orders of magnitude. Intrasession variance was significantly greater than expected from statistical variability alone, and intersession variance was even larger. Potential contributors include fluctuations in task performance, differences in electrode montage and short-term random variation in central coupling. These factors require further exploration and, where possible, minimisation. This study provides evidence that coherence is remarkably robust to senescent changes in the nervous system and provides a large normative dataset for future applications of IMC as a biomarker in disease states.
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