Sprint Interval Exercise Improves Cognitive Performance Unrelated to Postprandial Glucose Fluctuations at Different Levels of Normobaric Hypoxia
Abstract
:1. Introduction
2. Materials and Methods
2.1. Participants
2.2. Experimental Design
2.3. Sprint Interval Exercise
2.4. Cognitive Test
2.5. Blood Glucose Measures
2.6. Physical Activity and Diet
2.7. Statistical Analyses
3. Results
3.1. Daily Activity and Baseline Values
3.2. Exercise Performance and Physiological Responses
3.3. Cognitive Function and Blood Glucose
4. Discussion
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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N | M | S | |
---|---|---|---|
SpO2 (%) | |||
Baseline | 98 ± 1 | 98 ± 1 | 98 ± 1 |
Pre | 98 ± 3 | 89 ± 3 *,a | 78 ± 4 *,**,a,b |
Post 0 | 96 ± 3 | 84 ± 5 *,a,b | 74 ± 58 *,**,a,b |
Post 10 | 97 ± 1 | 89 ± 4 *,a | 79 ± 5 *,**,a |
Post 30 | 97 ± 1 | 97 ± 2 b,c,d | 96 ± 3 b,c,d |
Post 60 | 97 ± 1 | 97 ± 2 b,c,d | 97 ± 2 b,c,d |
HR (bpm) | |||
Baseline | 63 ± 7 | 62 ± 6 | 64 ± 5 |
Pre | 65 ± 6 | 72 ± 8 *,a | 79 ± 10 *,**,a,b |
Post 0 | 167 ± 9 a,b | 168 ± 11 a,b | 168 ± 7 a,b |
Post 10 | 92 ± 11 a,b,c | 94 ± 16 a,b,c | 95 ± 12 a,b,c |
Post 30 | 86 ± 11 a,b,c,d | 86 ± 13 a,b,c,d | 87 ± 11 a,b,c,d |
Post 60 | 81 ± 10 a,b,c,d,e | 80 ± 11 a,b,c,d,e | 80 ±9 a,b,c,d,e |
RPE20 | |||
Baseline | 6 ± 0 | 6 ± 1 | 6 ± 0 |
Pre | 7 ± 1 | 7 ± 1 | 7 ± 1 |
Post 0 | 17 ± 2 a,b | 18 ± 2 a,b | 17 ± 2 a,b |
Post 10 | 8 ± 2 c | 8 ± 2 c | 8 ± 2 c |
Post 30 | 7 ± 2 c | 7 ± 1 c | 7 ± 2 c |
Post 60 | 7 ± 1 c | 7 ± 1 c | 6 ± 1 c |
N | M | S | |
---|---|---|---|
Peak power (W/kg) | 11.6 ± 1.9 | 11.4 ± 1.8 | 9.9 ± 2.8 *,# |
Average power (W/kg) | 6.4 ± 0.8 | 6.1 ± 0.7 * | 5.9 ± 0.9 * |
Fatigue index (%) | 45.0 ± 13.6 | 48.8 ± 14.9 | 51.0 ± 18.4 |
Exercise HR (bpm) | 169 ± 9 | 169 ± 11 | 168 ± 9 |
%HRmax (%) | 93.1 ± 4.3 | 93.2 ± 5.4 | 92.8 ± 4.6 |
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Lei, O.-K.; Sun, S.; Nie, J.; Shi, Q.; Kong, Z. Sprint Interval Exercise Improves Cognitive Performance Unrelated to Postprandial Glucose Fluctuations at Different Levels of Normobaric Hypoxia. J. Clin. Med. 2022, 11, 3159. https://doi.org/10.3390/jcm11113159
Lei O-K, Sun S, Nie J, Shi Q, Kong Z. Sprint Interval Exercise Improves Cognitive Performance Unrelated to Postprandial Glucose Fluctuations at Different Levels of Normobaric Hypoxia. Journal of Clinical Medicine. 2022; 11(11):3159. https://doi.org/10.3390/jcm11113159
Chicago/Turabian StyleLei, On-Kei, Shengyan Sun, Jinlei Nie, Qingde Shi, and Zhaowei Kong. 2022. "Sprint Interval Exercise Improves Cognitive Performance Unrelated to Postprandial Glucose Fluctuations at Different Levels of Normobaric Hypoxia" Journal of Clinical Medicine 11, no. 11: 3159. https://doi.org/10.3390/jcm11113159
APA StyleLei, O. -K., Sun, S., Nie, J., Shi, Q., & Kong, Z. (2022). Sprint Interval Exercise Improves Cognitive Performance Unrelated to Postprandial Glucose Fluctuations at Different Levels of Normobaric Hypoxia. Journal of Clinical Medicine, 11(11), 3159. https://doi.org/10.3390/jcm11113159