Effects of chronic hypoxemia on the afferent nerve activities from skeletal muscle

E Dousset1, P Decherchi, L Grelot

  • 1Laboratoire de Physiopathologie Respiratoire (UPRES EA), Institut Jean Roche, Faculté de Médecine Nord, Université de la Méditerranée, Marseille, France.

Insights

Chronic hypoxemia alters muscle nerve fiber sensitivity, particularly reducing the response of group III-IV afferents to fatigue and chemical stimuli. This may explain increased fatigability in hypoxemic individuals.

Area of Science:

  • Exercise Physiology
  • Neuroscience
  • Muscle Biology

Background:

  • Acute muscle oxygen deprivation impacts metabolism and sensorimotor control via nerve fiber discharge.
  • The effects of chronic hypoxemia on muscle sensory nerve sensitivity remain largely unexplored.

Purpose of the Study:

  • To investigate the impact of chronic hypoxemia on the sensitivity of group I and group III-IV muscle afferents.
  • To compare the responses of these afferents in chronic hypoxemic rats versus normoxemic controls.

Main Methods:

  • Recorded group I and group III-IV nerve fibers from the anterior tibial muscle in rats exposed to chronic hypoxemia (45 days, 9.5-10% O2).
  • Stimulated afferents using electrically induced fatigue (EIF), KCl, lactic acid, and tendon vibrations.
  • Compared nerve fiber conduction velocity and afferent responses between hypoxemic and normoxemic groups.

Main Results:

  • Chronic hypoxemia significantly increased nerve fiber conduction velocity in all recorded fibers.
  • Hypoxemia markedly reduced and abolished responses of group III-IV afferents to chemical stimuli (KCl, lactic acid) and EIF.
  • Group I afferent responses to mechanical stimuli (tendon vibrations) were unaffected by chronic hypoxemia.

Conclusions:

  • Chronic hypoxemia significantly alters the chemosensitivity of group III-IV muscle afferents.
  • These alterations in muscle afferent function likely contribute to the increased fatigability observed in hypoxemic states.

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