Literature DB >> 23851917

Slowed oxygen uptake kinetics in hypoxia correlate with the transient peak and reduced spatial distribution of absolute skeletal muscle deoxygenation.

T Scott Bowen1, Harry B Rossiter, Alan P Benson, Tatsuro Amano, Narihiko Kondo, John M Kowalchuk, Shunsaku Koga.   

Abstract

It remains unclear whether an overshoot in skeletal muscle deoxygenation (HHb; reflecting a microvascular kinetic mismatch of O2 delivery to consumption) contributes to the slowed adjustment of oxidative energy provision at the onset of exercise. We progressively reduced the fractional inspired O2 concentration (F(I,O2)) to investigate the relationship between slowed pulmonary O2 uptake (V(O2)) kinetics and the dynamics and spatial distribution of absolute[HHb]. Seven healthy men performed 8 min cycling transitions during normoxia (F(I,O2) = 0.21),moderate hypoxia (F(I,O2) = 0.16) and severe hypoxia (F(I,O2)= 0.12). V(O2) uptake was measured using a flowmeter and gas analyser system. Absolute [HHb] was quantified by multichannel,time-resolved near-infrared spectroscopy from the rectus femoris and vastus lateralis (proximal and distal regions), and corrected for adipose tissue thickness. The phase II V(O2) time constant was slowed (P <0.05) as F(I,O2) decreased (normoxia, 17 ± 3 s;moderate hypoxia, 22 ± 4 s; and severe hypoxia, 29 ± 9 s). The [HHb] overshoot was unaffected by hypoxia, but the transient peak [HHb] increased with the reduction in F(I,O2) (P <0.05). Slowed V(O2) kinetics in hypoxia were positively correlated with increased peak [HHb] in the transient (r(2) = 0.45; P <0.05), but poorly related to the [HHb] overshoot. A reduction of spatial heterogeneity in peak [HHb]was inversely correlated with slowed V(O2) kinetics (r(2) = 0.49; P <0.05). These data suggest that aerobic energy provision at the onset of exercise may be limited by the following factors: (i) the absolute ratio (i.e. peak [HHb]) rather than the kinetic ratio (i.e. [HHb] overshoot) of microvascular O2 delivery to consumption; and (ii) a reduced spatial distribution in the ratio of microvascular O2 delivery to consumption across the muscle.

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Year:  2013        PMID: 23851917     DOI: 10.1113/expphysiol.2013.073270

Source DB:  PubMed          Journal:  Exp Physiol        ISSN: 0958-0670            Impact factor:   2.969


  16 in total

1.  Effects of increased skin blood flow on muscle oxygenation/deoxygenation: comparison of time-resolved and continuous-wave near-infrared spectroscopy signals.

Authors:  Shunsaku Koga; David C Poole; Narihiko Kondo; Anna Oue; Etsuko Ohmae; Thomas J Barstow
Journal:  Eur J Appl Physiol       Date:  2014-10-14       Impact factor: 3.078

2.  Muscle O2 extraction reserve during intense cycling is site-specific.

Authors:  Matthew D Spencer; Tatsuro Amano; Narihiko Kondo; John M Kowalchuk; Shunsaku Koga
Journal:  J Appl Physiol (1985)       Date:  2014-09-25

Review 3.  Heterogeneity of Muscle Blood Flow and Metabolism: Influence of Exercise, Aging, and Disease States.

Authors:  Ilkka Heinonen; Shunsaku Koga; Kari K Kalliokoski; Timothy I Musch; David C Poole
Journal:  Exerc Sport Sci Rev       Date:  2015-07       Impact factor: 6.230

4.  The plateau in the NIRS-derived [HHb] signal near the end of a ramp incremental test does not indicate the upper limit of O2 extraction in the vastus lateralis.

Authors:  Erin Calaine Inglis; Danilo Iannetta; Juan M Murias
Journal:  Am J Physiol Regul Integr Comp Physiol       Date:  2017-09-20       Impact factor: 3.619

5.  Effect of blood flow restriction on tissue oxygenation during knee extension.

Authors:  Goutham Ganesan; Joshua A Cotter; Warren Reuland; Albert E Cerussi; Bruce J Tromberg; Pietro Galassetti
Journal:  Med Sci Sports Exerc       Date:  2015-01       Impact factor: 5.411

6.  Cerebral and Muscle Tissue Oxygenation During Incremental Cycling in Male Adolescents Measured by Time-Resolved Near-Infrared Spectroscopy.

Authors:  Goutham Ganesan; Szu-Yun Leu; Albert Cerussi; Bruce Tromberg; Dan M Cooper; Pietro Galassetti
Journal:  Pediatr Exerc Sci       Date:  2015-10-09       Impact factor: 2.333

7.  Reduction of V̇O2 slow component by priming exercise: novel mechanistic insights from time-resolved near-infrared spectroscopy.

Authors:  Yoshiyuki Fukuoka; David C Poole; Thomas J Barstow; Narihiko Kondo; Masato Nishiwaki; Dai Okushima; Shunsaku Koga
Journal:  Physiol Rep       Date:  2015-06

8.  Greater V˙O2peak is correlated with greater skeletal muscle deoxygenation amplitude and hemoglobin concentration within individual muscles during ramp-incremental cycle exercise.

Authors:  Dai Okushima; David C Poole; Thomas J Barstow; Harry B Rossiter; Narihiko Kondo; T Scott Bowen; Tatsuro Amano; Shunsaku Koga
Journal:  Physiol Rep       Date:  2016-12

9.  The effect of dietary nitrate supplementation on the spatial heterogeneity of quadriceps deoxygenation during heavy-intensity cycling.

Authors:  Brynmor C Breese; David C Poole; Dai Okushima; Stephen J Bailey; Andrew M Jones; Narihiko Kondo; Tatsuro Amano; Shunsaku Koga
Journal:  Physiol Rep       Date:  2017-07

10.  Influence of Adjuvant Therapy in Cancer Survivors on Endothelial Function and Skeletal Muscle Deoxygenation.

Authors:  Austin K Ederer; Kaylin D Didier; Landon K Reiter; Michael Brown; Rachel Hardy; Jacob Caldwell; Christopher D Black; Rebecca D Larson; Carl J Ade
Journal:  PLoS One       Date:  2016-01-25       Impact factor: 3.240

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