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Forearm training attenuates sympathetic responses to prolonged rhythmic forearm exercise

L Sinoway1, J Shenberger, G Leaman

  • 1Division of Cardiology, Milton S. Hershey Medical Center, Pennsylvania State University, Hershey 17033, USA.

Journal of Applied Physiology (Bethesda, Md. : 1985)
|October 1, 1996
PubMed
Summary

Forearm exercise training reduces sympathetic nervous system responses to nonfatiguing rhythmic exercise. This training attenuates increases in blood pressure, muscle sympathetic nerve activity, and norepinephrine spillover, suggesting reduced afferent nerve discharge.

Keywords:
NASA Discipline MusculoskeletalNon-NASA Center

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Area of Science:

  • Exercise Physiology
  • Autonomic Neuroscience
  • Skeletal Muscle Physiology

Background:

  • Nonfatiguing rhythmic forearm exercise increases sympathetic activity without engaging metabolite-sensitive muscle afferents.
  • Fatiguing static forearm exercise, in contrast, relies on metabolite-sensitive afferents for sympathetic activation.

Purpose of the Study:

  • To investigate whether forearm exercise training attenuates sympathetic nervous system responses to nonfatiguing rhythmic forearm exercise.
  • To determine the effects of training on cardiovascular and sympathetic nerve responses during a specific exercise protocol.

Main Methods:

  • A 4-week unilateral forearm training program was implemented.
  • Measurements included heart rate, mean arterial blood pressure (MAP), muscle sympathetic nerve activity (microneurography), and plasma norepinephrine (NE) kinetics.
  • These parameters were assessed during nonfatiguing rhythmic forearm exercise before and after the training period.

Main Results:

  • Forearm training did not alter forearm mass, maximal voluntary contraction, or heart rate.
  • Training significantly attenuated the exercise-induced increases in MAP, muscle sympathetic nerve activity, and norepinephrine spillover in the trained forearm.
  • Specifically, increases in MAP, sympathetic nerve bursts, and NE spillover were reduced post-training.

Conclusions:

  • Forearm exercise training effectively reduces sympathetic nervous system responses during nonfatiguing rhythmic handgrip exercise.
  • This attenuation occurs in an exercise paradigm that does not primarily engage muscle metaboreceptors.
  • The findings suggest a conditioning-induced reduction in mechanically sensitive muscle afferent discharge contributes to these adaptations.