Betaine supplementation improves CrossFit performance and increases testosterone levels, but has no influence on Wingate power: randomized crossover trial
Language English Country United States Media print
Document type Randomized Controlled Trial, Journal Article
PubMed
37409757
PubMed Central
PMC10327519
DOI
10.1080/15502783.2023.2231411
Knihovny.cz E-resources
- Keywords
- Betaine, CrossFit, Wingate test, supplementation, testosterone,
- MeSH
- Betaine * pharmacology MeSH
- Double-Blind Method MeSH
- Cross-Over Studies MeSH
- Humans MeSH
- Dietary Supplements MeSH
- Testosterone * MeSH
- Check Tag
- Humans MeSH
- Publication type
- Journal Article MeSH
- Randomized Controlled Trial MeSH
- Names of Substances
- Betaine * MeSH
- Testosterone * MeSH
BACKGROUND: Because betaine (BET) supplementation may improve muscular strength and endurance, it seems plausible that BET will also influence CrossFit performance (CF). PURPOSE: The aim of this study was to evaluate the effects of three weeks of BET supplementation on body composition, CF performance, muscle power in the Wingate anaerobic test (WAnT), and the concentrations of selected hormones. The secondary aims were to analyze the effectiveness of two different BET doses (2.5 and 5.0 g/d) and their interaction with the methylenetetrahydrofolate reductase (MTHFR) genotype. METHODS: The study was designed in a double-blinded randomized cross-over fashion. Forty-three CF practitioners completed the entire study. CF performance was measured using the Fight Gone Bad (FGB) workout and muscle power was evaluated in a 30-second WAnT. Body composition was determined by air-displacement plethysmography. Blood was drawn to assess hormone concentrations. The C677T single nucleotide polymorphism (rs180113) in the MTHFR gene was analyzed. RESULTS: FGB total improved with BET by 8.7 ± 13.6% (p < 0.001), but no significant changes were observed with placebo (- 0.4 ± 10.0%, p = 0.128). No changes were also observed in WAnT and body composition. After BET supplementation testosterone concentration increased by 7.0 ± 15.4% with BET (p = 0.046) (no change with placebo: 1.5 ± 19.6%, p = 0.884) but had no effect on concentrations of insulin-like growth factor or cortisol. Finally, there were no significant interactions between MTHFR genotype and BET dose in any outcome. CONCLUSIONS: BET supplementation may improve CF performance and increase testosterone concentration. However, there was no evidence of a difference between dosages (2.5 and 5.0 g/d) and MTHFR genotypes. The trial was registered on clinicaltrials.gov (NCT03702205) on 10 October 2018.
Poznan University of Life Sciences Department of Human Nutrition and Dietetics Poznań Poland
Poznan University of Physical Education Department of Sports Dietetics Poznań Poland
See more in PubMed
Maté-Muñoz, JL, Lougedo, JH, Barba, M, et al. Cardiometabolic and muscular fatigue responses to different CrossFit® workouts. J Sports Sci Med. 2018;17(4):668–535. doi: 10.1016/0022-4731(87)90035-5 PubMed DOI PMC
Claudino, JG, Gabbett, TJ, Bourgeois, F, et al. CrossFit overview: systematic review and meta-analysis. Sports Med Open. 2018; 4(1):11. doi: 10.1186/s40798-018-0124-5 PubMed DOI PMC
Santos Quaresma MVL, D, Guazzelli Marques, C, Nakamoto, FP.. Effects of diet interventions, dietary supplements, and performance-enhancing substances on the performance of CrossFit-trained individuals: a systematic review of clinical studies. Nutr. 2021;82:110994. doi: 10.1016/j.nut.2020.110994 PubMed DOI
Hoffman, JR, Ratamess, NA, Kang, J, et al. Effect of betaine supplementation on power performance and fatigue. J Int Soc Sports Nutr. 2009;6(1):7. doi: 10.1186/1550-2783-6-7 PubMed DOI PMC
Pryor, JL, Craig, SA, Swensen, T. Effect of betaine supplementation on cycling sprint performance. J Int Soc Sports Nutr. 2012;9(1):12. doi: 10.1186/1550-2783-9-12 PubMed DOI PMC
Cholewa, JM, Wyszczelska-Rokiel, M, Glowacki, R, et al. Effects of betaine on body composition, performance, and homocysteine thiolactone. J Int Soc Sport Nutr. 2013; 10(1):39. doi: 10.1186/1550-2783-10-39 PubMed DOI PMC
Apicella, JM, Lee, EC, Bailey, BL, et al. Betaine supplementation enhances anabolic endocrine and Akt signaling in response to acute bouts of exercise. Eur J Appl Physiol. 2103;113(3):793–802. doi: 10.1007/s00421-012-2492-8 PubMed DOI
Ueland, PM, Holm, PI, Hustad, S. Betaine: a key modulator of one-carbon metabolism and homocysteine status. Clin Chem Lab Med. 2005;43(10):1069–1075. doi: 10.1515/cclm.2005.187 PubMed DOI
Raghubeer, S, Matsha, TE. Methylenetetrahydrofolate (MTHFR), the one-carbon cycle, and cardiovascular risks. Nutrients. 2021;13(12):4562. doi: 10.3390/nu13124562 PubMed DOI PMC
Yan, J, Wang, W, Gregory, JF 3rd, et al. MTHFR C677T genotype influences the isotopic enrichment of one-carbon metabolites in folate-compromised men consuming d9-choline. The American Journal Of Clinical Nutrition. 2011;93(2):348–355. doi: 10.3945/ajcn.110.005975 PubMed DOI PMC
Machek, SB, Zawieja, EE, Heileson, JL, et al. Human serum betaine and associated biomarker concentrations following a 14 Day supplemental betaine loading protocol and during a 28 Day washout period: a pilot investigation. Nutrients. 2022;14(3):498. doi: 10.3390/nu14030498 PubMed DOI PMC
Durkalec-Michalski, K, Zawieja, EE, Zawieja, BE, et al. Evaluation of the repeatability and reliability of the cross-training specific fight gone bad workout and its relation to aerobic fitness. Sci Rep. 2021;11(1):7263. doi: 10.1038/s41598-021-86660-x PubMed DOI PMC
Khalil, SF, Mohktar, MS, Ibrahim, F. The theory and fundamentals of bioimpedance analysis in clinical status monitoring and diagnosis of diseases. Sens (Basel). 2014;14(6):10895–10928. doi: 10.3390/s140610895 PubMed DOI PMC
Bar-Or, O. The Wingate anaerobic test. An update on methodology, reliability and validity. Sports Med. 1987;4(6):381–394. doi: 10.2165/00007256-198704060-00001 PubMed DOI
Durkalec-Michalski, K, Zawieja, EE, Podgórski, T, et al. The effect of chronic progressive-dose sodium bicarbonate ingestion on CrossFit-like performance: a double-blind, randomized cross-over trial. PLoS One. 2018;13(5):e0197480. doi: 10.1371/journal.pone.0197480 PubMed DOI PMC
Moro, T, Badiali, F, Fabbri, I, et al. Betaine supplementation does not improve muscle hypertrophy or strength following 6 weeks of cross-fit training. Nutrients. 2020;12(6):1688. doi: 10.3390/nu12061688 PubMed DOI PMC
Nobari, H, Kargarfard, M, Minasian, V, et al. The effects of 14-week betaine supplementation on endocrine markers, body composition and anthropometrics in professional youth soccer players: a double blind, randomized, placebo-controlled trial. J Int Soc Sports Nutr. 2021;18(1):20. doi: 10.1186/s12970-021-00417-5 PubMed DOI PMC
Arazi, H, Aboutalebi, S, Taati, B, et al. Effects of short-term betaine supplementation on muscle endurance and indices of endocrine function following acute high-intensity resistance exercise in young athletes. J Int Soc Sports Nutr. 2022;19(1):1–16. doi: 10.1080/15502783.2022.2041988 PubMed DOI PMC
Wood, RI, Stanton, SJ. Testosterone and sport: current perspectives. Horm Behr. 2012;61(1):147–155. doi: 10.1016/j.yhbeh.2011.09.010 PubMed DOI PMC
Slow, S, Lever, M, Chambers, ST, et al. Plasma dependent and independent accumulation of betaine in male and female rat tissues. Physiol Res. 2009;58(3):403–410. doi: 10.33549/physiolres.931569 PubMed DOI
Papadopoulos, V, Kamtchouing, P, Drosdowsky, MA, et al. Effects of the transmethylation inhibitor S-adenosyl-homocysteine and of the methyl donor S-adenosyl-methionine on rat Leydig cell function in vitro. J Steroid Biochem Mol. 1987; 26(1):93–98. doi: 10.1016/0022-4731(87)90035-5 PubMed DOI
Llanos, MN, Ronco, AM, Pino, AM, et al. The transmethylations inhibitor 3-deazaadenosine, inhibits in vitro testosterone production by rat testis interstitial cells stimulated with HCG. J Steroid Biochem. 1985;23(1):73–76. doi: 10.1016/0022-4731(85)90262-6 PubMed DOI
Sarlak, M, Roumiani, E, Kheradmand, A, et al. Evaluating the effects of betaine on testicular ischemia/reperfusion injury induced by torsion/detorsion in the rat. Andrologia. 2022; 54(10):e14559. doi: 10.1111/and.14559 PubMed DOI
Tazari, M, Baghshani, H, Moosavi, Z. Effect of betaine versus arsenite-induced alterations of testicular oxidative stress and circulating androgenic indices in rats. Andrologia. 2018; 50(10):e13091. doi: 10.1111/and.13091 PubMed DOI
Sinha-Hikim, I, Artaza, J, Woodhouse, L, et al. Testosterone-induced increase in muscle size in healthy young men is associated with muscle fiber hypertrophy. Am J Physiol Endocrinol Metab. 2002; 283(1):E154–64. doi: 10.1152/ajpendo.00502.2001 PubMed DOI
Alén, M, Reinilä, M, Vihko, R. Response of serum hormones to androgen administration in power athletes. Med Sci Sports Exercise. 1985;17(3):354–359. doi: 10.1249/00005768-198506000-00009 PubMed DOI
Huang, QC, Xu, ZR, Han, XY, et al. Effect of betaine on growth hormone pulsatile secretion and serum metabolites in finishing pigs. J Anim Physiol Anim Nutr. 2007;91(3–4):85–90. doi: 10.1111/j.1439-0396.2006.00644.x PubMed DOI
QiChun, H, ZiRong, X, XinYan, H, et al. Changes in hormones, growth factor and lipid metabolism in finishing pigs fed betaine. Livest Sci. 2006;105(1–3):78–85. doi: 10.1016/j.livsci.2006.04.031 DOI
Ashtary-Larky, D, Bagheri, R, Tinsley, GM, et al. Betaine supplementation fails to improve body composition: a systematic review and meta-analysis. Br J Nutr. 2021;7(5):1–14. doi: 10.1017/s0007114521004062 PubMed DOI
ClinicalTrials.gov
NCT03702205