Exploring the Effects of Energy Constraints on Performance, Body Composition, Endocrinological/Hematological Biomarkers, and Immune System among Athletes: An Overview of the Fasting State
Abstract
:1. Introduction
2. Energy Restriction
3. Fasting for All Athletes
4. Muslim Athletes and Fasting
5. Physiological and Metabolic Responses to an RFP and Energy Restrictions
6. Endocrine Adaptations Induced by an RFP
6.1. Hormones Released by the Thyroid and the Effect of an RFP on These Hormones
6.2. Hormones Released by the Adrenal Gland and the Effect of an RFP on These Hormones
6.3. Response of Appetite Hormones to an RFP
7. Nutritional Considerations for Athletes during an RFP
7.1. Protein
7.2. Lipids
7.3. Hydration Strategies
- ⮚
- The RFP prevents athletes from being hydrated during a race, and they become dehydrated.
- ⮚
- The lack of water causes a drop in performance.
- ⮚
- The lack of water disrupts the balance of water and electrolytes [71].
- Reduce the time in situations where there is a possibility of dehydration, such as exposure to sunlight.
- Be sure to check the hydration status of the body.
- Before an RFP begins, fluids should be selected according to the conditions and contain minerals and energy that reduce water loss.
- The consumption of fluids when a person is not participating in an RFP should be regular, such as during the night.
- As much as possible, one should train and compete for 2 to 3 h after sunset [78].
8. Response of Hematocrit to an RFP in Athletes
8.1. Erythrocyte States
8.2. Platelet Count
9. Immunosuppression and Related Cells during an RFP
10. Response of the Immune System to an RFP in Athletes
11. Changing the Performance and Record of Athletes during Ramadan
11.1. Endurance Training
11.2. Resistance Training
11.3. Sprint Performance
11.4. Power-Output Measure
11.5. Blood Lactate Concentration
11.6. Practical Applications
12. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Authors | Sample | Protocol | Results |
---|---|---|---|
Attarzadeh Hosseini et al. [84] | 26 healthy males (two experimental groups were compared before and after the training period). | Participants were divided into non-active fasting (n = 13) and active fasting (n = 13) groups. | Positive alterations in hematological–biochemical Indices (Hb and Hct decreased; plasma glucose reduced significantly). |
Dewanti et al. [125] | 100 male outdoor workers. | Before the start of Ramadan and during the third week of the month of Ramadan. | Blood pressure was reduced in the partial-fasting and non-fasting groups, which was an unexpected result. While red blood cell production was suppressed, as evidenced by lower levels of Hb, red blood cells (RBC), and packed cell volume (PCV), the subjects were normocytic and normochromic based on normal mean corpuscular volume (MCV), mean corpuscular hemoglobin (MCH), and mean corpuscular hemoglobin concentration (MCHC) levels. |
Chaouachi et al. [94] | 15 elite male judo athletes. | Before, during, and after Ramadan (maintaining their usual high training loads). | The RFP produced small but significant changes in the inflammatory, hormonal, and immunological profiles of the judo athletes. Serum C-reactive protein increased from 2.93 ± 0.26 mg·L−1 pre-Ramadan to 4.60 ± 0.51 mg·L−1 at the end of Ramadan. Haptoglobin and antitrypsin significantly increased during different phases of Ramadan, whereas homocysteine and prealbumin levels remained relatively unchanged. Albumin decreased slightly by mid-Ramadan, then recovered. Immunoglobulin A increased from 1.87 ± 0.56 g·L−1 before Ramadan to 2.49 ± 0.75 g·L−1 at the end and remained high for 3 weeks after it ended. There were no changes in leucocyte cell counts throughout the study. The mean blood levels of thyroid-stimulating hormone and free thyroxine increased significantly during the RFP. |
Basilio et al. [126] | Wistar rats (n = 60) were randomly divided into 4 groups: control, exercise training (ET), intermittent fasting (IF), and exercise training plus intermittent fasting (ETI). | Over 12 weeks, control and ET animals were fed a standard, commercial diet ad libitum daily, while IF and ETI animals were fed every other day. In addition, the ET and ETI groups were submitted to a running protocol on a treadmill. | Exercise training increased the functional fitness of the ET and ETI groups and promoted cardiac fibrosis. The combination of IF and exercise training resulted in a smaller area under the blood-glucose curve and reduced the cardiomyocyte cross-sectional area and the interstitial collagen fraction in the ETI group as compared to the ET group. ERK and JNK expression levels were similar among groups (p > 0.05). |
Schübel et al. [127] | 150 overweight and obese participants (50% males, 50% females), age 35–65, with BMIs between 25–40 kg/m2 were divided into three groups (CCR: n = 49, ICR: n = 49, CG: n = 52). | →ICR: 5 days without energy restriction and 2 days with 75% ↓ in energy needs. → CCR: 20% daily ↓ in energy needs. →CG: NC in calorie intake. Over a 12-week intervention phase, a 12-week maintenance phase, and a 26-week follow-up phase. | Body weight during the intervention phase decreased by 7.1% ± 0.7% (p < 0.001) in the ICR group, by 5.2% ± 0.6% (p = 0.053) in the CCR group, and by 3.3% ± 0.6% (NS) in the CG group. At the final follow-up assessment (week 50), weight loss was 5.2% ± 1.2 (p = 0.01) in the ICR group, 4.9% ± 1.1% (p = 0.89) in the CCR group, and 1.7% ± 0.8% in the CG group. |
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Nobari, H.; Saedmocheshi, S.; Murawska-Ciałowicz, E.; Clemente, F.M.; Suzuki, K.; Silva, A.F. Exploring the Effects of Energy Constraints on Performance, Body Composition, Endocrinological/Hematological Biomarkers, and Immune System among Athletes: An Overview of the Fasting State. Nutrients 2022, 14, 3197. https://doi.org/10.3390/nu14153197
Nobari H, Saedmocheshi S, Murawska-Ciałowicz E, Clemente FM, Suzuki K, Silva AF. Exploring the Effects of Energy Constraints on Performance, Body Composition, Endocrinological/Hematological Biomarkers, and Immune System among Athletes: An Overview of the Fasting State. Nutrients. 2022; 14(15):3197. https://doi.org/10.3390/nu14153197
Chicago/Turabian StyleNobari, Hadi, Saber Saedmocheshi, Eugenia Murawska-Ciałowicz, Filipe Manuel Clemente, Katsuhiko Suzuki, and Ana Filipa Silva. 2022. "Exploring the Effects of Energy Constraints on Performance, Body Composition, Endocrinological/Hematological Biomarkers, and Immune System among Athletes: An Overview of the Fasting State" Nutrients 14, no. 15: 3197. https://doi.org/10.3390/nu14153197
APA StyleNobari, H., Saedmocheshi, S., Murawska-Ciałowicz, E., Clemente, F. M., Suzuki, K., & Silva, A. F. (2022). Exploring the Effects of Energy Constraints on Performance, Body Composition, Endocrinological/Hematological Biomarkers, and Immune System among Athletes: An Overview of the Fasting State. Nutrients, 14(15), 3197. https://doi.org/10.3390/nu14153197