Sport Physiology

Sport Physiology

The Effect of Four Weeks Beta-Alanine Consumption on Lactate and Anaerobic Performance in Female Amateur Swimmers

Document Type : Research Paper

Authors
1 MSc of Exercise Physiology, Department of Sport Sciences, Faculty of Humanities, Semnan university, Semnan, Iran
2 2. Associate Professor of Exercise Physiology, Department of Sport Sciences, Faculty of Humanities, Semnan university, Semnan, Iran
Abstract
Background and Purpose
In many sports activities and at the end of training and competition, the athlete enters the fatigue phase. Fatigue disrupts the rate of muscle production and shortening, causing a continuous and repetitive activity that depends on the intensity and duration of the activity. Therefore, the athlete's performance decreases and his performance is affected. Some supplements and sports drinks claim to delay or reduce the perception of fatigue. Beta-alanine can have beneficial effects on sports performance variables, blood lactate and fatigue index. The present study was conducted to investigate the effect of beta-alanine consumption on lactate and anaerobic performance of female swimmers.
Materials and Methods
In this semi-experimental study, 30 female swimmers aged 17-25 from Tehran province participated. Initially, all subjects completed health status questionnaires and informed consent by the athlete. The inclusion criteria for the present study were having at least three years of experience in swimming, not participating in other sports, being at least 17 and not more than 25 years old, not having any pathological symptoms, history of fractures, surgeries, or joint diseases in the lower limbs or spine in the past 7 years. Also, in order to eliminate the effect of previous training on the levels of research variables, the swimmers were given a 48-hour rest before implementing the training protocol and supplement consumption. At the beginning of the research protocol, the demographic characteristics of the subjects, such as height, weight, and body mass index, were measured. Then, the subjects were randomly assigned to two placebo and beta-alanine groups. The beta-alanine group took two 400 mg capsules daily and the placebo group took 500 mg dextrose capsules one hour before training for four weeks. The subjects performed their daily training for three days a week, swimming 1.5 hours every other day for a distance of about 2.5 km. The 100 and 200 m breaststroke swimming records were taken in the first and last sessions. The SAST test was used to measure anaerobic power. Immediately after the last training session and beta-alanine supplementation, lactate and pH were measured. Blood lactic acid concentration was measured using a lactometer. Data were evaluated using analysis of variance with repeated measures.

Results
The results of the repeated measures analysis of variance test showed that four weeks of beta-alanine consumption had a significant effect on blood lactate (P=0.009, F=7.79), and it can be said that the lactate level in the beta-alanine group was significantly reduced compared to the placebo group. Beta-alanine has a significant effect on the 100-meter swimming record (P=0.001, F=37.59) and 200-meter swimming record (P=0.001, F=28.63) of swimmers. After four weeks of beta-alanine consumption, the 100-meter and 200-meter swimming records improved significantly. Beta-alanine consumption had a significant effect on the anaerobic power of the first (P=0.001, F=42.54), second (P=0.001, F=42.53), third (P=0.001, F=1.87), fourth (P=0.001, F=139.57), and fifth (P=0.001, F=82.99) female swimmers, and it can be said that the time in the beta-alanine group was significantly reduced compared to the placebo group. In other words, beta-alanine consumption improved the anaerobic power of the female swimmers. However, it did not have a significant effect on pH (P=0.747, F=106) and the anaerobic power of the sixth (P=0.249, F=1.38).

Conclusion
The results of the present study showed that beta-alanine supplementation for four weeks in female amateur swimmers significantly reduced blood lactate, improved 100- and 200-meter breaststroke records, and increased anaerobic power compared to the placebo group; while no significant change was observed in blood pH levels. More specifically, the mean blood lactate decreased after the intervention in the beta-alanine group, the 100-meter and 200-meter swimming records improved significantly, and anaerobic power also showed a significant increase.Beta-alanine supplementation affects aerobic and anaerobic capacity, increased exercise intensity, improved performance, increased carnosine and histidine, changes in plasma hydrogen ion levels, and reduced fatigue (16). Beta-alanine plays a prominent role in regulating muscle buffering capacity, and changes in blood lactate have been observed with its consumption. It seems that beta-alanine consumption increases an individual’s ability to perform more intense exercise. Beta-alanine has a buffering effect due to the imidazole ring in its structure and its high concentration in human skeletal muscle (17). Physiologically, the main mechanism of action of beta-alanine is related to the increase in muscle carnosine levels. Carnosine acts as an intracellular buffer and prevents the decrease in muscle pH by inhibiting the excessive increase in H⁺ ions (produced during intense exercise) (18). This leads to a delay in the onset of muscle fatigue, increased exercise tolerance, and improved anaerobic performance. Although blood pH did not change significantly in the present study, the reduction in lactate and improvement in anaerobic power are likely due to this buffering effect of carnosine in the intracellular environment of the muscle, which may not be clearly reflected in the blood.

Article Message
The results showed that daily consumption of two 400 mg beta-alanine capsules per day for four weeks can improve performance and anaerobic capacity in athletes, therefore, taking into account the precautions, it can be suggested to swimmers to use beta-alanine supplementation to improve their records and anaerobic capacity.

Ethical Considerations
The present study was conducted in accordance with the ethical principles of Semnan University of Medical Sciences with ethical considerations with the approved code (IR.SEMUMS.REC.1403.330).

Authors’ Contributions
All authors contributed equally to the design, implementation, data analysis, and writing of the article.

Conflict of Interest
The authors of this article have no vested interest in its publication.

Acknowledgments
The researchers express their gratitude to the subjects who helped us in this project.
 
Keywords
Subjects

1. Soleiman F, Sadeghi H, Motamedi P, Barati AH. Effect of one stage of exhaustive local fatigue on mechanical parameters of lower-limb joints during the single-leg landing of semi-professional sportsmen. J Rehab Med. 2020;8(4):177-84. [In Persian]. https://doi.org/10.22037/jrm.2019.111454.2005
2. Fernandes RJ, Reis VM, Buzzachera CF. Commentary: anaerobic contribution determined in swimming distances: relation with performance. Frontiers in Physiology. 2018;9:507. https://doi.org/10.3389/fphys.2018.00507
3. Allen DG, Lamb GD, Westerblad H. Skeletal muscle fatigue: cellular mechanisms. Physiological Reviews. 2008;88(1):287-332. https://doi.org/10.1152/physrev.00015.2007
4. Muazzezzaneh A, Keshavarz SA, Yaraghi AS, Djalali M, Rahimi A. Effect of L-Arginine supplementation on blood lactate level and VO2 max at anaerobic threshold performance. Feyz Journal of Kashan University of Medical Sciences. 2010;14(3). [In Persian]. Available at: https://sid.ir/paper/356262/fa
5. Debold EP. Recent insights into muscle fatigue at the cross-bridge level. Frontiers in Physiology. 2012;3:151. https://doi.org/10.3389/fphys.2012.00151
6. Harris RC, Tallon M, Dunnett M, Boobis L, Coakley J, Kim HJ, et al. The absorption of orally supplied β-alanine and its effect on muscle carnosine synthesis in human vastus lateralis. Amino Acids. 2006;30(3):279-89. Available at:https://link.springer.com/article/10.1007/s00726-006-0299-9
7. Saunders B, Elliott-Sale K, Artioli GG, Swinton PA, Dolan E, Roschel H, et al. β-alanine supplementation to improve exercise capacity and performance: a systematic review and meta-analysis. British Journal of Sports Medicine. 2017;51(8):658-69. https://doi.org/10.1136/bjsports-2016-096396
8. Sheikholeslami Vatani D, Rahimi MR. Acute effects of different doses of beta-alanine supplement on neuromuscular fatigue and lactate accumulation after intense interval exercise. The Journal of Urmia University of Medical Sciences. 2016;26(11):912-20. [In Persian]. Available at: https://sid.ir/paper/64345/fa
9. Baguet A, Reyngoudt H, Pottier A, Everaert I, Callens S, Achten E, et al. Carnosine loading and washout in human skeletal muscles. Journal of Applied Physiology. 2009;106(3):837-42. https://doi.org/10.1152/japplphysiol.91357.2008
10. Saunders B DSPV, DE Oliveira LF, DA Eira Silva V, et al. Twenty-four weeks of β-alanine supplementation on carnosine content, related genes, and exercise. Med Sci Sports Exerc. 2017;49(5):896-906. http://doi.org/10.1249/MSS.0000000000001173
11. de Salles Painelli V, Roschel H, de Jesus FN, Sale C, Harris RC, Solis MY, et al. The ergogenic effect of beta-alanine combined with sodium bicarbonate on high-intensity swimming performance. Applied Physiology, Nutrition, and Metabolism. 2013;38(5):525-32. https://doi.org/10.1139/apnm-2012-0286
12. Behpoor N, Yoosefi S. The effect of β-alanine supplementation on serum lactate response and muscular endurance in male bodybuilders. Iranian Journal of Nutrition Sciences and Food Technology. 2017;12(2):19-26. [In Persian]. Available at: https://sid.ir/paper/121389/fa
13. Karimzadehfard H SS, Hosseni SA, Molaie A, Kazemi N. The effect of three weeks of β-alanine and creatine supplementation on the Response of creatine Kinase, lactate dehydrogenase and lactate to an exhausting swimming session in elite swimmers. Razi J Med Sci. 2021;28(6):90-99. [In Persian]. Available at: http://rjms.iums.ac.ir/article-1-6589-fa.html
14. Wądrzyk Ł, Staszkiewicz R, Strzała M. Evaluating the Usefulness of the Modified Swimming Anaerobic Sprint Test (SAST) based on the relationship with the 100- and 200-m Freestyle. Applied Sciences. 2022;12(15):7566. https://doi.org/10.3390/app12157566
15. Heidari N, Kashef M. The effect of beta-alanine supplementation on performance, tmax and blood lactate of elite male rowers. Journal of Food Technology and Nutrition. 2017;14(355):75-84. [In Persian]. Available at: https://sid.ir/paper/143378/fa
16. Derave WOM, Harris RC, Pottier A, Reyngoudt H, Koppo K, et al. Beta-alanine supplementation augments muscle carnosine content and attenuates fatigue during repeated isokinetic contraction bouts in trained sprinters. Journal of Applied Physiology. 2007;103(5):1736-43. https://doi.org/10.1152/japplphysiol.00397.2007
17. Gilsanz L, López-Seoane J, Jiménez SL, Pareja-Galeano H. Effect of β-alanine and sodium bicarbonate co-supplementation on the body’s buffering capacity and sports performance: a systematic review. Critical Reviews in Food Science and Nutrition. 2023;63(21):5080-93. https://doi.org/10.1080/10408398.2021.2012642
18. Artioli GG, Gualano B, Smith A, Stout J, Lancha Jr AH. Role of β-alanine supplementation on muscle carnosine and exercise performance. Medicine & Science in Sports & Exercise. 2010;42(6):1162-73. https://doi.org/ 10.1249/MSS.0b013e3181c74e38
19. Sirwan Mohammed S. Effect of four-week B-alanine supplementation on blood lactate and performance in Halabja Football players [M.A. Master in Exercise Physiology]; 2020. Available at: https://research.uok.ac.ir/~rrahimi/ViewResearch.aspx?ResearcherID=123009
20. Ghiasvand R AG, Malekzadeh J, Hajishafiee M, Daneshvar P, Akbari F, et al. Effects of six weeks of β-alanine administration on VO2 max, time to exhaustion and lactate concentrations in physical education students. Int J Prev Med. 2012;3:559-63. Available at: https://pubmed.ncbi.nlm.nih.gov/22973486/
21. Pietro L SB, Sandro S, Giampiero M, Andrea B. The acute administration of carnosine and beta-alanine does not improve running anaerobic performance and has no effect on the metabolic response to exercise. Advances in Physical Education. 2013;3(4):169-174. https://dx.doi.org/10.4236/ape.2013.34028
22. Jamshidi Hossein Abadi N, Jamshidi Hossein Abadi M, Yoosefi S. The effect of β-alanine supplementation on serum lactate response and muscular endurance in male bodybuilders. Iranian J Nutr Sci Food Technol. 2017;12(2):19-26. [In Persian]. Available at:http://nsft.sbmu.ac.ir/article-1-2280-en.html
23. Bellinger PM, Minahan CL. Additive benefits of β-alanine supplementation and sprint-interval training. Medicine and Science in Sports and Exercise. 2016:1-37. https://doi.org/10.1249/MSS.0000000000001050 [In Persian].
24. Ketabdar B, Fathie M. The effect of four-week high-intensity interval training with beta-alanine supplementation on aerobic and anaerobic performance and some blood parameters in girls basketball players. Journal of Advances Biomedical Sciences. 2017;7(1):60-7. [In Persian]. Available at:http://jabs.fums.ac.ir/article-1-1009-en.html
25. Heydari N, Kashef M. The effect of beta-alanine supplementation on performance, TMAX and lactate of the elite elite blood. Food and Nutrition Science. 2017;14(3):75-84. [In Persian]. Available at: https://www.magiran.com/p1702461
Volume 18, Issue 69
Spring 2026
Pages 34-47

  • Receive Date 25 July 2025
  • Revise Date 25 January 2026
  • Accept Date 22 November 2025