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September 10, 2025Pflügers Archiv - European Journal of Physiology2 citationsOpen Access

Non-invasive motor unit analysis reveals specific responses during maximal muscle contraction under normobaric hypoxia

DBDanilo BondiGVGiacomo ValliCSCarmen Santangelo

Structured PICO

Does acute normobaric hypoxia alter motor unit properties during maximal isometric exercise compared to normoxia?

P
Population
18 participants (gender-matched), mean age 22.6 years, BMI 23.6 kg/m2, bioimpedance phase angle 6.4
I
Intervention
Exposure to normobaric hypoxia (FiO2 ≊ 15.0% and FiO2 ≊ 13.4%) for ~30 min followed by 9 unilateral isometric contractions of the right knee extensors at maximum intensity
C
Comparator
Normobaric normoxia
O
Outcome
Motor unit properties (discharge rate and conduction velocity) measured via high-density surface EMGsurrogate

Acute normobaric hypoxia affects the neuromuscular system during maximal contraction, with greater effects on peripheral rather than central features.

Abstract

Abstract Hypoxia has been extensively studied as a stressor which pushes human bodily systems to responses and adaptations. Nevertheless, a few evidence exist onto constituent trains of motor unit action potential, despite recent advancements which allow to decompose surface electromyographic signals. This study aimed to investigate motor unit properties from noninvasive approaches during maximal isometric exercise in normobaric hypoxia. Applying a cross-over design, 18 participants (gender-matched, on average age 22.6 y, BMI 23.6 kg/m2, and bioimpedance phase angle 6.4) were exposed twice to hypoxia (FiO2 ≊ 15.0% and FiO2 ≊ 13.4%, separately, by using a tent connected with a hypoxic generator) and once to normobaric normoxia. After ≊ 30 min inside the tent, participants performed a series of 9 unilateral isometric contractions of the right knee extensors at maximum intensity for 5 s, interspersed with 15 s of passive recovery, while acquiring high-density surface EMG signals through a 64-electrodes grid and cardiorespiratory variables, and registering symptoms; then, a post-processing motor unit decomposition technique was applied. We found an increase in MU discharge rate as a response to acute normobaric hypoxia, although to a little extent and differently across sexes. Moreover, males experienced a more prominent increase of MU conduction velocity due to hypoxia. MUs responses to normobaric hypoxia were only slightly and non-homogeneously associated with hypoxic cardiorespiratory responses. Normobaric hypoxia affects the neuromuscular system with a relatively greater effect on peripheral rather than central features.

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Cite This Study

Bondi et al. (2025) studied this question.

synapsesocial.com/papers/6a9244de5de6664d6a6765fahttps://doi.org/10.1007/s00424-025-03119-y
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