Impact of inserted long rest periods during repeated sprint exercise on performance adaptation

2017 ◽  
Vol 18 (1) ◽  
pp. 47-53 ◽  
Author(s):  
Akiho Ikutomo ◽  
Nobukazu Kasai ◽  
Kazushige Goto
2018 ◽  
Vol 43 (3) ◽  
pp. 221-226 ◽  
Author(s):  
Kazushige Goto ◽  
Nobukazu Kasai ◽  
Chihiro Kojima ◽  
Aya Ishibashi

We determined the effects of repeated sprint exercise under normoxic and hypoxic conditions on serum hepcidin levels. Ten male athletes (age: 20.9 ± 0.3 years; height: 175.7 ± 6.0 cm; weight: 67.3 ± 6.3 kg) performed 2 exercise trials under normoxic (NOR; fraction of inspiratory oxygen (FiO2): 20.9%) or hypoxic conditions (HYPO; FiO2: 14.5%). The exercise consisted of 3 sets of 5 × 6 s of maximal pedaling (30-s rest periods between sprints, 10-min rest periods between sets). Blood samples were collected before exercise, immediately after exercise, and 1 and 3 h after exercise. Serum hepcidin levels were significantly elevated after exercise in both trials (both P < 0.01), with no significant difference between the trials. The postexercise blood lactate levels were significantly higher in the HYPO than the NOR (P < 0.05). Both trials caused similar increases in plasma interleukin-6 and serum iron levels (P < 0.001), with no significant difference between the trials. A significant interaction (trial × time) was apparent in terms of serum erythropoietin (EPO) levels (P = 0.003). The EPO level was significantly higher in the HYPO than the NOR at 3 h after exercise (P < 0.05). In conclusion, repeated sprint exercise significantly increased serum hepcidin levels to similar extent in 2 trials, despite differences in the inspired oxygen concentrations during both the exercise and the 3-h postexercise period.


2021 ◽  
Author(s):  
yanping yang ◽  
Junqiang Qiu ◽  
Mengyue Wang ◽  
Lin Feng ◽  
Dan Luo ◽  
...  

Abstract Background: The effects of pyruvate on metabolic acidosis and oxidative metabolism had been studied. The ability to attenuate acidosis and improve oxidative system contribution are critical to the performance of team sport athletes during perform multiple high-intensity exercise over a limited period of time. This study aimed to investigate the impact of pyruvate supplementation on energy metabolism and metabolic acidosis during high-intensity interval exercise (HIIE), as well as to evaluate its role on repeated sprint exercise (RSE) performance.Methods: 14 well-trained male college soccer athletes (age: 20 ± 2 years, body fat: 13.11 ± 3.50 %) were studied in a randomized, double-blind, cross-over study. The participants ingested either 0.1g/kg/d of pyruvate or a placebo for 1-week. Metabolic acidosis was induced by HIIE after the supplement period, and RSE ability in the acidosis state was assessed. Venous blood pH, bicarbonate (HCO3-) and base excess (BE) were measured at baseline, pre-HIIE, post-HIIE, pre-RSE and post-RSE. Finger-stick blood lactate were collected at baseline, immediately after each bout of HIIE and 3, 5, 7, 10 min after HIIE. The energy systems contribution during HIIE were estimated. Results: Blood pH, HCO3- and BE were significantly lower than baseline after HIIE (p < 0.01) in both pyruvate group (PYR) and placebo group (PLA). Compared to PLA, the blood pH, HCO3- and BE were significantly improved in PYR at pre-HIIE (p < 0.01), post-HIIE (p < 0.01) and pre-RSE (p < 0.01). Furthermore, blood BE remained higher in PYR than PLA till end of RSE (p < 0.05). The contribution of oxidative system in the fourth bout of HIIE was higher in PYR than PLA (p < 0.05). In PLA, the ratio of total anaerobic energy contribution during HIIE was higher than that of aerobic (oxidative) (p < 0.01), but not in PYR (p > 0.05). Relative peak power (RPP) of first, fifth sprint, relative average power (RAP) of fifth sprint, the average of RPP and RAP during RSE were significantly improved in PYR compared with PLA (p < 0.05). While no significant changes in the PD% of each bout (p > 0.05) or average PD% (p > 0.05) were observed between the two groups. Conclusion: Pyruvate supplementation for 1-week enhances oxidative system energy contribution and buffers metabolic acidosis during HIIE, and improves RSE performance in acidosis.


2020 ◽  
Vol 8 (12) ◽  
Author(s):  
Keiichi Yamaguchi ◽  
Nobukazu Kasai ◽  
Nanako Hayashi ◽  
Haruka Yatsutani ◽  
Olivier Girard ◽  
...  

Metabolism ◽  
2005 ◽  
Vol 54 (10) ◽  
pp. 1269-1275 ◽  
Author(s):  
Christos G. Stathis ◽  
Michael F. Carey ◽  
Rodney J. Snow

2016 ◽  
Vol 48 ◽  
pp. 256
Author(s):  
Tom Clifford ◽  
Bram Berntzen ◽  
Gareth W. Davison ◽  
Daniel J. West ◽  
Glyn Howatson ◽  
...  

2020 ◽  
Vol Publish Ahead of Print ◽  
Author(s):  
Ahmed Graja ◽  
Maissa Kacem ◽  
Omar Hammouda ◽  
Rihab Borji ◽  
Mohamed A. Bouzid ◽  
...  

2010 ◽  
Vol 111 (4) ◽  
pp. 669-678 ◽  
Author(s):  
Fabio R. Serpiello ◽  
Michael J. McKenna ◽  
Nigel K. Stepto ◽  
David J. Bishop ◽  
Robert J. Aughey

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