Asymmetry in Body Composition Variables of Youth Athletes

Authors

  • Albena Dimitrova National Sports Academy “Vassil Levski”, Department of Anatomy and Biomechanics, Sofia, Bulgaria; Bulgarian Academy of Sciences, Institute of Experimental Morphology, Pathology and Anthropology with Museum, Department of Anthropology and Anatomy, Sofia, Bulgaria image/svg+xml https://orcid.org/0000-0002-6941-7133

DOI:

https://doi.org/10.18778/1898-6773.87.1.01

Keywords:

tennis players, rhythmic gymnasts, swimmers, asymmetry, body composition

Abstract

Assessing bilateral differences in paired anthropometric features is an important methodological problem in sports anthropology. The present study included 128 adolescent female athletes (59 rhythmic gymnasts, 58 tennis players, and 11 swimmers). Body composition components were determined using multi-frequency bioelectrical impedance measurements (analyzer InBody 170). Asymmetry coefficients of muscle and fat mass accumulation in the upper (AA) and lower (AL) limbs were calculated using the Nacheva` equation (1986). The percentiles method was applied to distribute the bilaterally studied anthropometric features according to the mean values of the units of asymmetry (UA). Wilkoxon-test was used to assess the statistically significant differences in paired variables. Kruskal-Wallis test was applied to determine the differences in UA between three assessed athlete groups, depending on their age. The differences in body composition components between rhythmic gymnasts (RG), tennis players (TP), and swimmers (SW) were well expressed in all assessed age groups. The most considerable inter-group differences were observed in terms of the asymmetry coefficient in the lean body mass (LBM) with a right direction and body fat mass with a left direction for upper limb fat mass (%, kg), which have signed the highest values in the tennis players group, followed by the RG on the same age. Swimmers had significantly the lowest values of UA for all body segments. A close relation was found between asymmetry in body composition variables and the type of sports activity. Tennis was found as a sport with more pronounced inter-limbs asymmetry.

Downloads

Download data is not yet available.

References

Abrahão MRA, Mello D. 2008. Diferenças antropométricas entre o hemi-corpo direito e o esquerdo de adultos instrutores de tênis e crianças iniciantes no esporte e incidência de desvios posturais. Fitness & Performance Journal 7(4):264–270. https://doi.org/10.3900/fpj.7.4.264.p
View in Google Scholar

Berdejo-del-Fresno D, Vicente-Rodriguez G, González-Ravé JM, Moreno LA, Rey-López JP. 2010. Body Composition and Fitness in Elite Spanish Children Tennis Players. JHSE V(II):250–264. https://doi.org/10.4100/jhse
View in Google Scholar

Bishop C, Turner A, Read P. 2018. Effects of inter-limb asymmetries on physical and sports performance: A systematic review. J Sports Sci 36(10):1135–1144. https://doi.org/10.1080/02640414.2017.1361894
View in Google Scholar

Dos’Santos T, Bishop C, Thomas C, Comfort P, Jones PA. 2019. The effect of limb dominance on change of direction biomechanics: A systematic review of its importance for injury risk. Phys Ther Sport 37:179–189. https://doi.org/10.1016/j.ptsp.2019.04.005
View in Google Scholar

Douda HT, Toubekis AG, Avloniti AA, Tokmakidis SP. 2008. Physiological and anthropometric determinants of rhythmic gymnastics performance. Int J Sports Physiol Perform 3(1):41–54. https://doi.org/10.1123/ijspp.3.1.41
View in Google Scholar

Falbová D, Vorobeľová l, Beňuš R. 2022. Gender-specific anthropometric and body composition analysis in slovak young adults. Anthropologie (Brno) 60(2):319–328. https://doi.org/10.26720/anthro.22.03.21.2
View in Google Scholar

Falbová D, Beňuš R, Vorobeľová L. 2023. Association between smoking status and body composition parameters in a young adult population. Anthropol Rev 86(2):77–87. https://doi.org/10.18778/1898-6773.86.2.07
View in Google Scholar

Frutuoso A, Diefenthaeler F, Vaz M, Freitas C. 2016. Lower limb asymmetries in Rhythmic Gymnastics athletes. IJSPT 11(1):34–43.
View in Google Scholar

Georgopoulos N, Theodoropoulou A, Roupas N, Rottstein L, Tsekouras A, Mylonas P, Vagenakis GA, Koukkou E, Armeni AK, Sakellaropoulos G, Leglise M, Vagenakis AG, Markou K. 2012. Growth velocity and final height in elite female rhythmic and artistic gymnasts. Hormones 11(1):61–69. https://doi.org/10.1007/BF03401538
View in Google Scholar

Koley S, Singh J, Sandhu SJ. 2010. Anthropometric and physiological characteristics on Indian inter-university volleyball players. J Hum Sport Exerc 5(3):389–399. https://doi.org/10.4100/jhse.2010.53.09
View in Google Scholar

Koley S, Yadav M, Sandhu J. 2008. Estimation of Hand Grip Strength and its Association with some Anthropometric traits in Cricketers of Armitsar, Punjab, India. The Internet Journal of Biological Anthropology 3 (1).
View in Google Scholar

Malina RM, Peña Reyes ME, Tan SK, Buschang PH, Little BB, Koziel S. 2004. Secular change in height, sitting height and leg length in rural Oaxaca, southern Mexico: 1968–2000. Ann Hum Biol 31(6):615–33. https://doi.org/10.1080/03014460400018077
View in Google Scholar

Palomino-Martin A, Gonzalez-Martel V, Quiroga ME, Ortega-Santana F. 2015. Effects of Swimming Training on Body Asymmetry in Adolescents. Int J Morphol 33(2):507–513.
View in Google Scholar

Rogowski I, Creveaux T, Genevois C, Klouche S, Rahme M, Hady P. 2016. Upper limb joint muscle/tendon injury and anthropometric adaptations in French competitive tennis players. Eur J Sport Sci 16(4):483–489. https://doi.org/10.1080/17461391.2015.1031712
View in Google Scholar

Rogowski I, Ducher G, Brosseau O, Hautier C. 2008. Asymmetry in volume between dominant and nondominant upper limbs in young tennis players. Pediatr Exerc Sci 20:263–272. https://doi.org/10.1123/pes.20.3.263
View in Google Scholar

Rynkiewicz M, Rynkiewicz T, Żurek P, Ziemann E, Szymanik R. 2013. Asymmetry of muscle mass distribution in tennis players. TSS 1(20):47–53.
View in Google Scholar

Sánchez-Muñoz C, Sanz D, Zabala M. 2007. Anthropometric characteristics, body composition and somatotype of elite junior tennis players. Br J Sports Med 41:793–799. http://doi.org/10.1136/bjsm.2007.037119
View in Google Scholar

Schluga-Filho JL, Ribas MR, Nogueira LO, Andrade JC, Fernandes P, Bassan JC. 2016. Motor and morphological profile of tennis players from 11 to 15 years old. Rev Andal Med 9(3). https://doi.org/114–118.10.1016/j.ramd.2014.11.003
View in Google Scholar

Stoykov G. 2012. Modeling of anthropometric and velocity forces possibilities of the tennis players at the age of 12–18 years. PhD Thesis, Sofia.
View in Google Scholar

Teixeira LA, Paroli R. 2000. Assimetrias laterais em ações motoras: preferência versus desempenho. Motriz 6(1):1–8. https://doi.org/10.5016/8749
View in Google Scholar

Tomkinson GR, Léger LA, Olds TS, Cazorla G. 2003. Secular trends in the performance of children and adolescents (1980–2000): an analysis of 55 studies of the 20 m shuttle run test in 11 countries. Sports Med. 33(4):285–300. https://doi.org/10.2165/00007256-200333040-00003
View in Google Scholar

Tyler TF, Nicholas SJ, Campbell RJ, McHugh, MP. 2001. The Association of Hip Strength and Flexibility with the Incidence of Adductor Muscle Strains in Professional Ice Hockey Players. Am J Sports Med 29(2):124–128. https://doi.org/10.1177/03635465010290020301
View in Google Scholar

Ulijaszek SJ, Mascie-Taylor NCG. 2005. Anthropometry the Individual and Population. Cambridje University Press, ISBN:1784050415.
View in Google Scholar

Vergauwen L, Spaepen AJ, Lefevre J, Hespel P. 1998. Evaluation of stroke performance in tennis. Med Sci Sports Exerc 30(8):1281–1288. https://doi.org/10.1097/00005768-199808000-00016
View in Google Scholar

World Medical Association, Declaration of Helsinki – Ethical Principles for Medical Research Involving Human Subjects. 2008. WMJ 54(4):122–25.
View in Google Scholar

Zaidel DW, Hessamian M. 2010. Asymmetry and symmetry in the beauty of human faces. Symmetry. 2:36–149. https://doi.org/10.3390/sym2010136
View in Google Scholar

Zaidi ZF. 2011. Body asymmetries: incidence, etiology and clinical implications. Aust J Basic Appl Sci 5(9):2157–2191.
View in Google Scholar

Downloads

Published

2024-03-28 — Updated on 2024-06-03

Versions

How to Cite

Dimitrova, A. (2024). Asymmetry in Body Composition Variables of Youth Athletes. Anthropological Review, 87(1), 1–9. https://doi.org/10.18778/1898-6773.87.1.01 (Original work published March 28, 2024)

Issue

Section

Articles

Most read articles by the same author(s)

Similar Articles

<< < 24 25 26 27 28 29 30 31 > >> 

You may also start an advanced similarity search for this article.