Effect of Acute Dietary Nitrate Consumption on Oxygen Consumption During Submaximal Exercise in Hypobaric Hypoxia
Carriker CR, Mermier CM, Van Dusseldorp TA, Johnson KE, Beltz NM, Vaughan RA, McCormick JJ, Cole NH, Witt CC, Gibson AL
International journal of sport nutrition and exercise metabolism · 13 citations
Review labels
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
- 2015-12-02 · Int J Sport Nutr Exerc Metab · vol. 26 · issue 4 · pp. 315–322
- Publisher
- Human Kinetics
- Cited
- 18 citations · more than 85% of similar papers · 1.6× the field average
- References
- 0 works
- Access
- Paywalled
- Research areas
- High Altitude and Hypoxia · Cardiovascular and exercise physiology · Muscle metabolism and nutrition
- Keywords
- Crossover study, Animal science, Dietary Nitrate, Cycling, Placebo, VO2 max, Nitrite, Hypoxia (environmental), Oxygen, Nitrate, Effects of high altitude on humans, Chemistry, Internal medicine, Medicine, Heart rate, Blood pressure, Biology, Anatomy
- MeSH
- humans, beta vulgaris, nitrates, nitrites, oxygen, lactic acid, exercise, diet, cross-over studies, double-blind method, altitude, oxygen consumption, heart rate, exercise tolerance, rest, dietary supplements, adult, male, young adult, fruit and vegetable juices
10 authors
From US
- Colin R. Carriker · correspondingIndiana State University
- Christine M. Mermier
- Trisha A Van Dusseldorp
- Kelly E. Johnson
- Nicholas M. Beltz
- Roger A. Vaughan
Abstract
Reduced partial pressure of oxygen impairs exercise performance at altitude. Acute nitrate supplementation, at sea level, may reduce oxygen cost during submaximal exercise in hypobaric hypoxia. Therefore, we investigated the metabolic response during exercise at altitude following acute nitrate consumption. Ten well-trained (61.0 ± 7.4 ml/kg/min) males (age 28 ± 7 yr) completed 3 experimental trials (T1, T2, T3). T1 included baseline demographics, a maximal aerobic capacity test (VO2max) and five submaximal intensity cycling determination bouts at an elevation of 1600 m. A 4-day dietary washout, minimizing consumption of nitrate-rich foods, preceded T2 and T3. In a randomized, double-blind, placebo-controlled, crossover fashion, subjects consumed either a nitrate-depleted beetroot juice (PL) or ~12.8 mmol nitrate rich (NR) beverage 2.5 hr before T2 and T3. Exercise at 3500 m (T2 and T3) via hypobaric hypoxia consisted of a 5-min warm-up (25% of normobaric VO2max) and four 5-min cycling bouts (40, 50, 60, 70% of normobaric VO2max) each separated by a 4-min rest period. Cycling RPM and watts for each submaximal bout during T2 and T3 were determined during T1. Preexercise plasma nitrite was elevated following NR consumption compared with PL (1.4 ± 1.2 and 0.7 ± 0.3 uM respectively; p < .05). There was no difference in oxygen consumption (-0.5 ± 1.8, 0.1 ± 1.7, 0.7 ± 2.1, and 1.0 ± 3.0 ml/kg/min) at any intensity (40, 50, 60, 70% of VO2max, respectively) between NR and PL. Further, respiratory exchange ratio, oxygen saturation, heart rate and rating of perceived exertion were not different at any submaximal intensity between NR and PL either. Blood lactate, however, was reduced following NR consumption compared with PL at 40 and 60% of VO2max (p < .0.05). Our findings suggest that acute nitrate supplementation before exercise at 3500 m does not reduce oxygen cost but may reduce blood lactate accumulation at lower intensity workloads.
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