Neuromuscular Plasticity Induced by Resistance Training Under Different Hypoxic Environments

Background: This study compared the effects of 8 weeks of hypertrophy-oriented resistance training (RT) under normoxia (N), moderate hypobaric hypoxia (HH), and moderate normobaric hypoxia (NH) on functional, neuromuscular and structural adaptations of the quadriceps. Methods: Twenty-nine resistance-trained males (22.5 ± 3.4 years) were assigned to N (n = 10), HH at 2320 m (n = 8), or equivalent NH (FiO2 = 15.9%; ~2320 m; n = 11). Participants completed 22 supervised RT sessions across 8 weeks. Primary outcomes were corticospinal excitability (CSE), assessed via transcranial magnetic stimulation (TMS), and neuromuscular activation, assessed with femoral nerve stimulation and surface electromyography. Secondary measures included back squat one-repetition maximum (1RM_SQ) and vastus lateralis (VL) muscle thickness (MTh) via ultrasound. Results: All groups improved maximal squat performance (p < 0.001; NH Δ29.10 kg, d = −1.72; HH Δ22.61 kg, d = −1.34; N Δ16.82 kg, d = −0.99), VL MTh (p < 0.001; HH Δ0.25 cm, d = −0.66; N Δ0.24 cm, d = −0.63; NH Δ0.10 cm, d = −0.25), and VL maximal compound muscle action potential (Mmax) (p = 0.035; HH Δ1.13 mV, d = −0.65; NH Δ1.07 mV, d = −0.61; N Δ0.61 mV, d = −0.35), regardless of environmental condition. Conversely, the maximum motor-evoked potential obtained from the recruitment curve (RC_MEPmax) decreased following RT (p < 0.001; NH Δ−0.16, d = 1.39; HH Δ−0.08, d = 0.73; N Δ−0.04, d = 0.36). Other CSE markers remained unchanged. Conclusions: Eight weeks of RT under moderate hypoxia induced increases in Mmax and reductions in RC_MEPmax, suggesting training-related neuromuscular adjustments enhancing motor efficiency under hypoxic stress. These adaptations were accompanied by meaningful strength gains, although the mechanisms underlying their relationship remain to be fully elucidated.

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Journal
Brain Sciences
Published
2026-09-29
DOI
https://doi.org/10.3390/brainsci16101044
Primary Topic
Sports Performance and Training
Type
article
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article

Neuromuscular Plasticity Induced by Resistance Training Under Different Hypoxic Environments

David Colomer‐Poveda, Cristina Benavente, Blanca de la Fuente, Rafael Timón et al.
Brain Sciences
Sports Performance and Training
article

Neuromuscular Plasticity Induced by Resistance Training Under Different Hypoxic Environments

David Colomer‐Poveda, Cristina Benavente, Blanca de la Fuente, Rafael Timón, Gonzalo Márquez, Paulino Padial, Belén Feriche
article en

Abstract

Background: This study compared the effects of 8 weeks of hypertrophy-oriented resistance training (RT) under normoxia (N), moderate hypobaric hypoxia (HH), and moderate normobaric hypoxia (NH) on functional, neuromuscular and structural adaptations of the quadriceps. Methods: Twenty-nine resistance-trained males (22.5 ± 3.4 years) were assigned to N (n = 10), HH at 2320 m (n = 8), or equivalent NH (FiO2 = 15.9%; ~2320 m; n = 11). Participants completed 22 supervised RT sessions across 8 weeks. Primary outcomes were corticospinal excitability (CSE), assessed via transcranial magnetic stimulation (TMS), and neuromuscular activation, assessed with femoral nerve stimulation and surface electromyography. Secondary measures included back squat one-repetition maximum (1RM_SQ) and vastus lateralis (VL) muscle thickness (MTh) via ultrasound. Results: All groups improved maximal squat performance (p < 0.001; NH Δ29.10 kg, d = −1.72; HH Δ22.61 kg, d = −1.34; N Δ16.82 kg, d = −0.99), VL MTh (p < 0.001; HH Δ0.25 cm, d = −0.66; N Δ0.24 cm, d = −0.63; NH Δ0.10 cm, d = −0.25), and VL maximal compound muscle action potential (Mmax) (p = 0.035; HH Δ1.13 mV, d = −0.65; NH Δ1.07 mV, d = −0.61; N Δ0.61 mV, d = −0.35), regardless of environmental condition. Conversely, the maximum motor-evoked potential obtained from the recruitment curve (RC_MEPmax) decreased following RT (p < 0.001; NH Δ−0.16, d = 1.39; HH Δ−0.08, d = 0.73; N Δ−0.04, d = 0.36). Other CSE markers remained unchanged. Conclusions: Eight weeks of RT under moderate hypoxia induced increases in Mmax and reductions in RC_MEPmax, suggesting training-related neuromuscular adjustments enhancing motor efficiency under hypoxic stress. These adaptations were accompanied by meaningful strength gains, although the mechanisms underlying their relationship remain to be fully elucidated.

Brain SciencesVol. 16(10)
Universidade da Coruña (ES), Universidad de Granada (ES), Universidad Rey Juan Carlos (ES), Universidad de Extremadura (ES)
Life in Land
Openalex Percentile: Top 10%
Sports Performance and Training
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