Randomized controlled trial2011

Dietary nitrate reduces muscle metabolic perturbation and improves exercise tolerance in hypoxia

Vanhatalo A, Fulford J, Bailey SJ, Blackwell JR, Winyard PG, Jones AM

The Journal of physiology · 165 citations

Review labels

Funding not disclosed

Neutral facts our review recorded about how this study was done. They describe method, never whether we like the result.

How it was studied

Design
Randomized controlled trial (indexed by PubMed)
Studied in
People
Main outcome
Health markers and function
Intake measured by
Not stated

Who paid for it

Funding
Funding not disclosed

Publication

Published
2011-09-13 · J Physiol · vol. 589 · issue 22 · pp. 5517–5528
Publisher
Wiley
Cited
229 citations · more than 99% of similar papers · 13.7× the field average
Impact
Top 10% most cited in its field
References
67 works
Access
Open access (repository copy)
Research areas
High Altitude and Hypoxia · Cardiovascular and exercise physiology · Heart Rate Variability and Autonomic Control
Keywords
Hypoxia (environmental), Internal medicine, Nitrate, Cardiology, Medicine, Endocrinology, Dietary Nitrate, Chemistry, Oxygen
MeSH
muscle, skeletal, humans, beta vulgaris, plant roots, nitrates, nitrites, plant extracts, exercise test, cross-over studies, double-blind method, blood pressure, exercise tolerance, dietary supplements, adult, female, male, young adult, hypoxia

6 authors

From GB, US

  • Anni VanhataloUniversity of Exeter
  • Jonathan FulfordPeninsula Research
  • Stephen J. Bailey
  • James R. Blackwell
  • Paul Graham WinyardUniversity of Exeter; Peninsula College of Medicine and Dentistry
  • ANDREW MARK JONES

Abstract

Exercise in hypoxia is associated with reduced muscle oxidative function and impaired exercise tolerance. We hypothesised that dietary nitrate supplementation (which increases plasma [nitrite] and thus NO bioavailability) would ameliorate the adverse effects of hypoxia on muscle metabolism and oxidative function. In a double-blind, randomised crossover study, nine healthy subjects completed knee-extension exercise to the limit of tolerance (T(lim)), once in normoxia (20.9% O(2); CON) and twice in hypoxia (14.5% O(2)). During 24 h prior to the hypoxia trials, subjects consumed 0.75 L of nitrate-rich beetroot juice (9.3 mmol nitrate; H-BR) or 0.75 L of nitrate-depleted beetroot juice as a placebo (0.006 mmol nitrate; H-PL). Muscle metabolism was assessed using calibrated (31)P-MRS. Plasma [nitrite] was elevated (P < 0.01) following BR (194 ± 51 nm) compared to PL (129 ± 23 nm) and CON (142 ± 37 nM). T(lim) was reduced in H-PL compared to CON (393 ± 169 vs. 471 ± 200 s; P < 0.05) but was not different between CON and H-BR (477 ± 200 s). The muscle [PCr], [P(i)] and pH changed at a faster rate in H-PL compared to CON and H-BR. The [PCr] recovery time constant was greater (P < 0.01) in H-PL (29 ± 5 s) compared to CON (23 ± 5 s) and H-BR (24 ± 5 s). Nitrate supplementation reduced muscle metabolic perturbation during exercise in hypoxia and restored exercise tolerance and oxidative function to values observed in normoxia. The results suggest that augmenting the nitrate-nitrite-NO pathway may have important therapeutic applications for improving muscle energetics and functional capacity in hypoxia.

Abstract via Europe PMC. Copyright remains with the authors or publisher.

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