ArticleThe Journal of physiology2018
UBC-Nepal expedition: peripheral fatigue recovers faster in Sherpa than lowlanders at high altitude.
Article in The Journal of physiology, 2018. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 7 papers.
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Who cites it
7 citing papers in PubMed, 12 citations in OpenAlex.
- Neuromuscular mechanisms for the fast decline in rate of force development with muscle disuse - a narrative review.The Journal of physiology · 2026Review
- No Differences in Motor Units Discharge Rate Between Females and Males in Explosive Ankle Dorsiflexions.Scandinavian journal of medicine & science in sports · 2025Article
- Marked hemoglobin mass expansion and plasma volume contraction in Sherpas acclimatizing to 5,400 m altitude.Journal of applied physiology (Bethesda, Md. : 1985) · 2024Article
- Neuromuscular fatigability at high altitude: Lowlanders with acute and chronic exposure, and native highlanders.Acta physiologica (Oxford, England) · 2022Review
- Relationship between cardiorespiratory phase coherence during hypoxia and genetic polymorphism in humans.The Journal of physiology · 2020Article
- Could genetic and epigenetic factors explain hypoxia tolerance and superior muscle performance of Sherpas at high-altitude?The Journal of physiology · 2019Article
- Population History and Altitude-Related Adaptation in the Sherpa.Frontiers in physiology · 2019Review
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Authors and funding
5 authors at 1 institution in 1 country.
Funding
Abstract
key pointsThe reduced oxygen tension of high altitude compromises performance in lowlanders. In this environment, Sherpa display superior performance, but little is known on this issue. Sherpa present unique genotypic and phenotypic characteristics at the muscular level, which may enhance resistance to peripheral fatigue at high altitude compared to lowlanders. We studied the impact of gradual ascent and exposure to high altitude (5050 m) on peripheral fatigue in age-matched lowlanders and Sherpa, using intermittent electrically-evoked contractions of the knee extensors. Peripheral fatigue (force loss) was lower in Sherpa during the first part of the protocol. Post-protocol, the rate of force development and contractile impulse recovered faster in Sherpa than in lowlanders. At any time, indices of muscle oxygenation were not different between groups. Muscle contractile properties in Sherpa, independent of muscle oxygenation, were less perturbed by non-volitional fatigue. Hence, elements within the contractile machinery contribute to the superior physical performance of Sherpa at high altitude. ABSTRACT: Altitude-related acclimatisation is characterised by marked muscular adaptations. Lowlanders and Sherpa differ in their muscular genotypic and phenotypic characteristics, which may influence peripheral fatigability at altitude. After gradual ascent to 5050 m, 12 lowlanders and 10 age-matched Sherpa (32 ± 10 vs. 31 ± 11 years, respectively) underwent three bouts (separated by 15 s rest) of 75 intermittent electrically-evoked contractions (12 pulses at 15 Hz, 1.6 s between train onsets) of the dominant leg quadriceps, at the intensity which initially evoked 30% of maximal voluntary force. Trains were also delivered at minutes 1, 2 and 3 after the protocol to measure recovery. Tissue oxygenation index (TOI) and total haemoglobin (tHb) were quantified by a near-infrared spectroscopy probe secured over rectus femoris. Superficial femoral artery blood flow was recorded using ultrasonography, and delivery of oxygen was estimated (eDO
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