Strength Asymmetries in Young Elite Sailors: Windsurfing, Optimist, Laser and 420 Classes
Abstract
:1. Introduction
2. Materials and Methods
2.1. Participants
2.2. Testing Procedures
2.3. Single-Leg Vertical Countermovement Jump (VCJ)
2.4. Single-Leg Horizontal Countermovement Jump (HCJ)
2.5. Hand Dynamometry (HD)
2.6. Symmetry Index (SI)
2.7. Functional Asymmetry of Compression Force (FACF)
2.8. Statistical Analyses
3. Discussion
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
- Caraballo, I.; González-Montesinos, J.L.; Alías, A. Performance factors in dinghy sailing: Laser class. Int. J. Environ. Res. Public Health 2019, 16, 4920. [Google Scholar] [CrossRef] [Green Version]
- Vogiatzis, I.; De Vito, G.; Rodio, A.; Madaffari, A.; Marchetti, M. The physiological demands of sail pumping in Olympic level windsurfers. Eur. J. Appl. Physiol. 2002, 86, 450–454. [Google Scholar]
- Castagna, O.; Vaz, C.; Brisswalter, J. The assessment of energy demand in the new Olympic windsurf board: Neilpryde RS:X. Eur. J. Appl. Physiol. 2007, 100, 247–252. [Google Scholar] [CrossRef]
- Blackburn, M. Physiological responses to 90 min of simulated dinghy sailing. J. Sports Sci. 1994, 12, 383–390. [Google Scholar] [CrossRef]
- Maïssetti, O.; Guével, A.; Lachkine, P.; Legros, P.; Brisswalter, J. Sustained hiking position in dinghy sailing. Theoretical aspects and methodological considerations for muscle fatigue assessment. Sci. Et. Sports 2002, 17, 234–246. [Google Scholar]
- Tan, B.; Aziz, A.R.; Spurway, N.C.; Toh, C.; Mackie, H.; Xie, W.; Wong, J.; Fuss, F.K.; Teh, K.C. Indicators of maximal hiking performance in Laser sailors. Eur. J. Appl. Physiol. 2006, 98, 169–176. [Google Scholar] [CrossRef]
- Barrionuevo, J.M.; Fructuoso, D.; Hernández, E.; Martínez, I. Maximal strength and endurance hand grip in Tornado. Apunt. Sports Med. 2007, 42, 161–168. [Google Scholar]
- Guével, A.; Hogrel, J.Y.; Marini, J.F. Fatigue of elbow flexors during repeated flexion-extension cycles: Effect of movement strategy. Int. J. Sports Med. 2000, 21, 492–498. [Google Scholar] [CrossRef] [PubMed]
- Castagna, O.; Brisswalter, J.; Lacour, J.R.; Vogiatzis, J. Physiological demands of different sailing techniques of the new Olympic windsurfing class. Eur. J. Appl. Physiol. 2008, 104, 1061–1067. [Google Scholar] [CrossRef]
- Daly, R.M.; Saxon, L.; Turner, C.H.; Robling, A.G.; Bass, S.L. The relationship between muscle size and bone geometry during growth and in response to exercise. Bone 2004, 34, 281–287. [Google Scholar] [CrossRef] [PubMed]
- Kanchan, T.; Mohan Kumar, T.S.; Pradeep Kumar, G.; Yoganarasimha, K. Skeletal asymmetry. J. Forensic Leg. Med. 2008, 15, 177–179. [Google Scholar] [CrossRef]
- Sanchis-Moysi, J.; Idoate, F.; Olmedillas, H.; Guadalupe-Grau, A.; Alayón, S.; Carreras, A.; Dorado, C.; Calbet, J.A.L. The upper extermity of the profesional tennis player: Muscle volumes, fiber-type distribution and muscle strength. Scand. J. Med. Sci. Sports 2010, 20, 524–534. [Google Scholar] [CrossRef]
- Mirtz, T.; Chandler, J.P.; Eyers, C.M. The Effects of Physical Activity on the Epiphyseal Growth Plates: A Review of the Literature on Normal Physiology and Clinical Implications. J. Clin. Med. Res. 2011, 3, 1–7. [Google Scholar] [CrossRef] [Green Version]
- Burdukiewicz, A.; Pietraszewska, J.; Andrezejwska, J.; Chromik, K.; Stachon, A. Asymmetry of musculature and hand grip strength in bodybuilders and martial artists. Int. J. Environ. Res. Public Health 2020, 17, 4695. [Google Scholar] [CrossRef]
- Nadler, S.F.; Malanga, G.A.; DePrince, M.; Stitik, T.P.; Feinberg, J.H. The relationship between lower extremity injury, low back pain, and hip muscle strength in male and female collegiate athletes. Clin. J. Sport Med. 2000, 10, 89–97. [Google Scholar] [CrossRef]
- Grygorowicz, M.; Kubacki, J.; Pilis, W.; Gieremek, K.; Rzepka, R. Selected isokinetic test in knee injury prevention. Biol. Sport 2010, 27, 47–51. [Google Scholar] [CrossRef] [Green Version]
- Spurway, N. Hiking physiology and the “quasi-isometric” concept. J. Sports Sci. 2007, 25, 1081–1093. [Google Scholar] [CrossRef] [PubMed]
- Fohanno, V.; Nordez, A.; Smith, R.; Colloud, F. Asymmetry in elite rowers: Effect of ergometer design and stroke rate. Sport Biomech. 2015, 14, 310–322. [Google Scholar] [CrossRef]
- Meylan, C.; McMaster, T.; Cronin, J.; Mohammad, N.I.; Rogers, C.; Deklerk, M. Single-leg lateral, horizontal, and vertical jump assessment: Reliability, interrelationships, and ability to predict sprint and change-of-direction performance. J. Strength Cond. Res. 2009, 23, 1140–1147. [Google Scholar] [CrossRef] [PubMed]
- Balsalobre-Fernández, C.; Glaister, M.; Lockey, R.A. The validity and realiability of an iPhone app for measuring vertical jump performance. J. Sports Sci. 2015, 33, 1574–1579. [Google Scholar] [CrossRef] [PubMed]
- Castro, J. Assement of Physical Fitness in Children Aged 6 to 17 Years. Proposal of Health-Related Fitness Test Battery; The Alpha Study. Ph.D. Thesis, Cádiz University, Cádiz, Spain, 2009. [Google Scholar]
- Bell, D.R.; Sanfilippo, J.L.; Binkley, N.; Heiderscheit, B.C. Lean mass asymmetry influences force and power asymmetry during jumping in collegiate athletes. J. Strength Cond. Res. 2014, 28, 884–891. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Evershed, J.; Burkett, B.; Mellifont, R. Musculoskeletal screening to detect asymmetry in swimming. Phys. Ther. Sport 2014, 15, 33–38. [Google Scholar] [CrossRef]
- Björklund, G.; Alricsson, M.; Svantesson, U. Using bilateral functional and anthropometric test to define symmetry in cross-country skiers. J. Hum. Kinet. 2017, 60, 9–18. [Google Scholar] [CrossRef] [Green Version]
- Herzog, W.; Nigg, B.M.; Read, L.J.; Olsson, E. Asymmetries in ground reaction force patterns in normal human gait. Med. Sci. Sports Exerc. 1989, 21, 110–114. [Google Scholar] [CrossRef]
- Tourny-Chollet, C.; Seifert, L.; Chollet, D. Effect of force symmetry on coordination in crawl. Int. J. Sports Med. 2009, 30, 182–187. [Google Scholar] [CrossRef]
- Shadrina, E.; Volpert, Y. Functional asymmetry and fingerprint features of left-handed and right-handed young yakuts (Mongoloid Race, North-Eastern Siberia). Symmetry 2018, 10, 728. [Google Scholar] [CrossRef] [Green Version]
- Caraballo, I.; González-Montesinos, J.L.; Alías, A. Bilateral and unilateral asymmetrires of strength and flexibility in young elite sailors: Windsurfing, Optimist and Laser Classes. Symmetry 2020, 12, 184. [Google Scholar] [CrossRef] [Green Version]
- Castro-Piñero, J.; Ortega, F.B.; Artero, E.G.; Girela-Rejón, M.J.; Mora, J.; Sjöström, M.; Ruiz, J.R. Assessing muscular strength in youth: Usefulness of standing long jump as a general index of muscular fitness. J. Strength Cond. Res. 2010, 24, 1810–1817. [Google Scholar] [CrossRef] [PubMed]
- Callewaert, M.; Boone, J.; Celie, B.; De Clercq, D.; Bourgois, J.G. Indicators of sailing performance in youth dinghy sailing. Eur. J. Sport Sci. 2015, 15, 213–219. [Google Scholar] [CrossRef] [PubMed]
- Vangelakoudi, A.; Vogiatzis, I.; Geladas, N. Anaerobic capacity, isometric endurance and Laser sailing performance. J. Sports Sci. 2007, 25, 1095–1100. [Google Scholar] [CrossRef]
- Malina, R.M.; Buschang, P.H. Antrhopometric asymmetry in normal and mentally retarded males. Ann. Hum. Biol. 1984, 11, 515–531. [Google Scholar] [CrossRef] [PubMed]
- Askling, C.; Karlsson, J.; Thorstensson, A. Hamstring injury occurence in elite soccer players after preseason strength training with eccentric overload. Scand. J. Med. Sci. Sports 2003, 13, 244–250. [Google Scholar] [CrossRef] [PubMed]
- Croisier, J.L.; Forthomme, B.; Namurois, M.H.; Vanderthormmen, M.; Crielaard, J.M. Hamstring muscle strain recurrence and strength performance disorders. Am. J. Sports Med. 2002, 30, 199–203. [Google Scholar] [CrossRef] [PubMed]
All (n = 68) | Girls (n = 26) | Boys (n = 42) | d | |
---|---|---|---|---|
Age (years) | 13.9 ± 2.1 (9–19) | 14.3 ± 1.8 (9–17) | 13.6 ± 2.3 (9–19) | 0.02 |
Height (cm) | 159. 9 ± 11.5 (134–183) | 159.2 ± 5.7 (146–170) | 160.3 ± 13.9 (134–183) | 0.0 |
Mass (kg) | 53.7 ± 14.8 (28.8–112) | 52.4 ± 11.2 (35.5–89.7) | 54.5 ± 16.2 (28.8–112) | 0.0 |
Experience (years) | 5.6 ± 2.5 (1–11) | 5.8 ± 2.3 (2–10) | 5,5 ± 2,6 (1–11) | 0.0 |
Right HD (kg) | 30.6 ± 9.8 (13.4–59) | 28.4 ± 5.1 (14.6–36) | 32.1 ± 11.6 (13.4–59) | 0.03 |
Left HD (kg) | 29.5 ± 9.5 (12.7–58) | 27.4 ± 5.7 (15.5–37.9) | 30.8 ± 11.1 (12.7–58) | 0.03 |
Do HD (kg) | 30.6 ± 9.8 (13.4–59) | 28.3 ± 5.5 (14.6–37.5) | 32.1 ± 11.5 (13.4–59) | 0.03 |
Nod HD (kg) | 29.5 ± 9.5 (12.7–58) | 27.5 ± 5.4 (15.5–37.9) | 30.8 ± 11.3 (12.7–58) | 0.02 |
HD SI (%) | 3.6 ± 11.1 (–21.9–37.5) | 3.8 ± 13.2 (–21.9–37.5) | 3.6 ± 9.8 (–16.8–28.9) | 0.0 |
AC (kg) | 0.01 ± 0.05 (–11–19) | 0.01 ± 0.06 (–0.1–0.1) | 0.01 ± 0.04 (–0.08–0.1) | 0.0 |
Right S_VCJ (N) | 658.9 ± 169.6 (336.9–1253) | 634.3 ± 99.4 (434.6–874.5) | 674.2 ± 200.8 (336.9–1252.9 | 0.01 |
Left S_VCJ (N) | 653.6 ± 168.2 (338.7–1131.5) | 620.6 ± 107.1 (401.9–895.1) | 674.1 ± 195.2 (338.7–1131.5) | 0.02 |
Do S_VCJ (N) | 658.5 ± 171.9 (336.9–1252.9) | 631.9 ± 111.2 (401.9–895.1) | 675 ± 200 (336.9–1252.9) | 0.01 |
Nod S_VCJ(N) | 654.1 ± 165.9 (338.7–1131.5) | 622.9 ± 95.2 (434.6–874–5) | 673.2 ± 196.1 (338.7–1131.5) | 0.02 |
Right P_VCJ (W) | 465.1 ± 162.9 | 435.9 ± 100.6 (269.2–659.9) | 483.1 ± 190.6 (186.5–890.9) | 0.02 |
Left P_VCJ (W) | 452.4 ± 172.1 (189.7–914.6) | 409.2 ± 105.1 (–27.5–39.1) | 479.1 ± 199.2 (189.75–914.6) | 0.03 |
Do P_VCJ (W) | 466.3 ± 164.4 (193–890.9) | 436 ± 113.6 (200.8–659.9) | 485 ± 188.1 (193–890.9) | 0.02 |
Nod P_VCJ (W) | 451.1 ± 170.4 (186.5–914.6) | 409.1 ± 90.8 (269.9–601.1) | 477.1 ± 201.5 (186.5–914.6) | 0.03 |
P_VCJ SI (%) | 3.6 ± 19.7 (–42.2–82.3) | 6.9 ± 15.6 (–27.5–39.1) | 1.6 ± 21.8 (–42.2–82.3) | 0.01 |
Right HCJ (cm) | 124.9 ± 26.5 (71.6–183.11) | 113.1 ± 18.1 (71.6–140) | 132.2 ± 28.5 (78.4–183.1) * | 0.12 |
Left HCJ (cm) | 125.7 ± 27.1 (55–183) | 115.8 ± 16.1 (89–153.8) | 131.8 ± 30.6 (55–183) * | 0.08 |
Do HCJ (cm) | 126.6 ± 25.4 (71.6–183.1) | 115.8 ± 16.8 (71.6–140) | 133.3 ± 27.62 (78.4–183.1) ** | 0.11 |
Nod HCJ (cm) | 124.6 ± 25.4 (71.6–183.1) | 113.2 ± 17.5 (81–153.8) | 130.7 ± 31.3 (55–183) ** | 0.09 |
HCJ SI (%) | –0.5 ± 16.8 (–51.1–66.7) | –2.6 ± 15.7 (–51.1–26.8) | 0.8 ± 17.5 (–48.1–66.7) | 0.01 |
Windsurfing (n = 15) | Optimist (n = 29) | Laser (n = 18) | 420 (n = 6) | d | |
---|---|---|---|---|---|
Age (years) | 14.1 ± 1.2 (12–16) | 12.2 ± 1.5 (9–14) A | 15.9 ± 1.5 (13–19) | 15.5 ± 1.3 (14–17) | 0.53 |
Height (cm) | 160.3 ± 7.8 (146–175) | 153.4 ± 11.8 (134–173) | 169.1 ± 7.4 (159–183) E | 163 ± 8.2 (153–173) | 0.31 |
Mass (kg) | 50.9 ± 7.8 (36.4–63.5) | 47.1 ± 12.1 (28.8–79.2) | 67.4 ± 15.5 (47–112) C | 51.4 ± 6.5 (42.7–60.6) | 0.34 |
Experience (years) | 5,9 ± 2,9 (2–11) | 4,5 ± 2 (1–9) B | 6,3 ± 2,1 (3–10) | 8,1 ± 2,6 (4–11) | 0.51 |
Right HD (kg) | 30.6 ± 10.2 (14.6–56.3) | 25.8 ± 7.7 (13.4–45.4) | 37.5 ± 9.5 (21–59) E | 32.9 ± 6.7 (26.6–44.6) | 0.24 |
Left HD (kg) | 27.9 ± 8.5 (18.2–48.8) | 24.8 ± 7.5 (12.7–41) | 37.4 ± 9.2 (20–58) D | 32.5 ± 6.3 (24.5–40.4) | 0.3 |
Do HD (kg) | 30.5 ± 10.3 (14.6–56.3) | 25.7 ± 7.6 (13.4–45.4) | 37.9 ± 9.2 (20–59) E | 32.9 ± 6.7 (26.6–44.6) | 0.25 |
Nod HD (kg) | 28 ± 8.4 (18.2–48.8) | 24.9 ± 7.7 (12.7–41) | 37.1 ± 9.5 (21–58) D | 32.5 ± 6.3 (24.5–40.4) | 0.28 |
HD SI (%) | 8.1 ± 13.5 (–21.9–37.5) | 4.1 ± 10.4 (–14.37–28.9) | 0.1 ± 10.5 (–18.3–15.5) | 1.1 ± 7.5 (–7.9–9.8) | 0.06 |
AC (kg) | 0.04 ± 0.06 (–11–0.1) | 0.02 ± 0.05 (–0.07–0.1) | 0.0008 ± 0.05 (–0.09–0.08) | 0.005 ± 0.03 (–0.04–0.05) | 0.06 |
Right S_VCJ (N) | 638.5 ± 96.5 (497.1–810.5) | 568.7 ± 137.6 (336.9–870.1) | 819.7 ± 168 (569.8–1252.9) D | 663.5 ± 124.9 (523.9–864.2) | 0.03 |
Left S_VCJ (N) | 627.6 ± 108.8 (445.1–806.3) | 565.2 ± 142.7 (338.7–897.9) | 813.7 ± 146.6 (569.8–1131.5) D | 664.8 ± 138.9 (527.1–881.9) | 0.36 |
Do S_VCJ (N) | 631.5 ± 107.5 (445.1–810.5) | 568.8 ± 138.2 (336.9–870.1) | 823.7 ± 166.1 (569.8–1252.9) D | 663.5 ± 124.9 (523.9–864.2) | 0.37 |
Nod S_VCJ(N) | 634.6 ± 98.2 (498.4–806.3) | 565.1 ± 142.1 (338.7–897.9) | 809.7 ± 148.4 (569.8–1131.5) D | 664.8 ± 138.9 (527.1–881.9) | 0.36 |
Right P_VCJ (W) | 454.3 ± 118.1 (269.2–653.5) | 375.1 ± 115.9 (186.5–659.9) | 595.2 ± 170.6 (326.1–890.9) D | 535.9 ± 167.4 (358.1–794.8) | 0.32 |
Left P_VCJ (W) | 438.1 ± 126.4 (269.9–646.2) | 366.3 ± 122.6 (189.7–601.1) | 575.8 ± 188.1 (277.5–914.6) D | 534.2 ± 201.6 (365.7–837.2) | 0.26 |
Do P_VCJ (W) | 447.6 ± 124.9 (269.2–653.3) | 375.7 ± 116.1 (193–659.9) | 604.5 ± 164.5 (326.1–890.9) D | 535.9 ± 167.4 (358.1–794.8) | 0.33 |
Nod P_VCJ (W) | 444.8 ± 120.2 (269.9–646.2) | 365.6 ± 122.3 (186.5–601.1) | 566.5 ± 192.1 (277.5–914.6) E | 534.2 ± 201.6 (365.7–837.2) | 0.25 |
P_CMJ SI (%) | 4.3 ± 14.9 (–27.5–39.1) | 3.1 ± 19.2 (–42.2–48.8) | 4.6 ± 26.6 (–34.9–82.3) | 1.8 ± 9.8 (–8.9–17.3) | 0.0 |
Right HCJ (cm) | 125.3 ± 22.2 (97.6–165.4) | 117.9 ± 28.8 (71.6–172) | 132.3 ± 22.3 (85–182) | 135.7 ± 32.9 ((101.7–183.1) | 0.06 |
Left HCJ (cm) | 125.2 ± 22.4 (89.5–165) | 124.4 ± 26.4 (64–175) | 126.2 ± 32.2 (55–183) | 131.8 ± 29.9 (95.7–170.6) | 0.0 |
Do HCJ (cm) | 126.2 ± 21.7 (97.6–165.4) | 121.1 ± 27.9 (71.6–172) | 132.8 ± 20.7 (100–182) | 135.7 ± 32.9 (101.7–183.1) | 0.04 |
Nod HCJ (cm) | 124.3 ± 22.9 (89.5–165) | 121.2 ± 27.7 (64–175) | 125.6 ± 33.2 (55–183) | 131.8 ± 29.9 (95.7–170.6) | 0.01 |
HCJ SI (%) | 0.1 ± 9.5 (–12.3–26.8) | –5.9 ± 18.5 (–51.1–32.6) | 6.6 ± 19 (–18.7–66.6) | 2.6 ± 4.2 (–3.6–7) | 0.09 |
Do HD (kg) | Nod HD (kg) | Do P_VCJ (W) | Nod P_VCJ (W) | Do HCJ (cm) | Nod HCJ (cm) | |
---|---|---|---|---|---|---|
All (n = 68) | 30.6 ± 9.8 (13.4–59) | 29.5 ± 9.5 (12.7–58) | 658.5 ± 171.9 (336.9–1252.9) | 654.1 ± 165.9 (338.7–1131.5) | 126.6 ± 25.4 (71.6–183.1) | 124.6 ± 25.4 (71.6–183.1) |
Girls (n = 26) | 28.3 ± 5.5 (14.6–37.5) | 27.5 ± 5.4 (15.5–37.9) | 436 ± 113.6 (200.8–659.9) | 409.1 ± 90.8 (269.9–601.1) | 115.8 ± 16.8 (71.6–140) | 113.2 ± 17.5 (81–153.8) |
Boys (n = 42) | 32.1 ± 11.5 (13.4–59) | 30.8 ± 11.3 (12.7–58) | 485 ± 188.1 (193–890.9) | 477.1 ± 201.5 (186.5–914.6) | 133.3 ± 27.62 (78.4–183.1) | 130.7 ± 31.3 (55–183) |
Windsurfing (n = 15) | 30.5 ± 10.3 (14.6–56.3) | 28 ± 8.4 (18.2–48.8) | 447.6 ± 124.9 (269.2–653.3) | 444.8 ± 120.2 (269.9–646.2) | 126.2 ± 21.7 (97.6–165.4) | 124.3 ± 22.9 (89.5–165) |
Optimist (n = 29) | 25.7 ± 7.6 (13.4–45.4) | 24.9 ± 7.7 (12.7–41) | 375.7 ± 116.1 (193–659.9) | 375.7 ± 116.1 (193–659.9) | 121.1 ± 27.9 (71.6–172) | 121.2 ± 27.7 (64–175) |
Laser (n = 18) | 37.9 ± 9.2 (20–59) | 37.1 ± 9.5 (21–58) | 604.5 ± 164.5 (326.1–890.9) | 566.5 ± 192.1 (277.5–914.6) | 132.8 ± 20.7 (100–182) | 125.6 ± 33.2 (55–183) |
420 (n = 6) | 32.9 ± 6.7 (26.6–44.6) | 32.5 ± 6.3 (24.5–40.4) | 535.9 ± 167.4 (358.1–794.8) | 534.2 ± 201.6 (365.7–837.2) | 135.7 ± 32.9 (101.7–183.1) | 131.8 ± 29.9 (95.7–170.6) |
All (n = 68) | Girls (n = 26) | Boys (n = 42) | Windsurf (n = 15) | Optimist (n = 29) | Laser (n = 18) | 420 (n = 6) | |
---|---|---|---|---|---|---|---|
Positive hand dynamometry SI | 27% | 30.4% | 26.4% | 40.2% | 34% | 22.4% | 0% |
Negative hand dynamometry SI | 11.8% | 11.5% | 11.9% | 6.7% | 10.3% | 22.2% | 0% |
Total hand dynamometry SI | 38.8% | 41.9% | 38.3% | 46.9% | 44.3% | 44.6% | 0% |
Positive AC | 69.1% | 65.4% | 71.4% | 80.4% | 65.5% | 66.7% | 66.7% |
Negative AC | 30.9% | 34.6% | 28.6% | 20% | 34.5% | 33.3% | 33.3% |
Positive VCJ SI | 33% | 34.2% | 31.2% | 33.5% | 34% | 33.6% | 16.7% |
Negative VCJ SI | 20.6% | 7.6% | 28.6% | 13.3% | 27.6% | 22.2% | 0% |
Total VCJ SI | 53.6% | 41.8% | 59.8% | 46.8% | 61.6% | 55.8% | 16.7% |
Positive HCJ SI | 18% | 11.4% | 21.6% | 6.7% | 17% | 33.6% | 0% |
Negative HCJ SI | 20.6% | 23.1% | 19% | 13.3% | 34.5% | 11.1% | 0% |
Total HCJ SI | 38.6% | 34.5% | 40.6% | 19.9% | 51.5% | 44.7% | 0% |
Publisher’s Note: MDPI stays neutral with regard to jurisdictional claims in published maps and institutional affiliations. |
© 2021 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
Share and Cite
Caraballo, I.; Casado-Rodríguez, F.; Gutiérrez-Manzanedo, J.V.; González-Montesinos, J.L. Strength Asymmetries in Young Elite Sailors: Windsurfing, Optimist, Laser and 420 Classes. Symmetry 2021, 13, 427. https://doi.org/10.3390/sym13030427
Caraballo I, Casado-Rodríguez F, Gutiérrez-Manzanedo JV, González-Montesinos JL. Strength Asymmetries in Young Elite Sailors: Windsurfing, Optimist, Laser and 420 Classes. Symmetry. 2021; 13(3):427. https://doi.org/10.3390/sym13030427
Chicago/Turabian StyleCaraballo, Israel, Francisco Casado-Rodríguez, José V. Gutiérrez-Manzanedo, and José Luis González-Montesinos. 2021. "Strength Asymmetries in Young Elite Sailors: Windsurfing, Optimist, Laser and 420 Classes" Symmetry 13, no. 3: 427. https://doi.org/10.3390/sym13030427
APA StyleCaraballo, I., Casado-Rodríguez, F., Gutiérrez-Manzanedo, J. V., & González-Montesinos, J. L. (2021). Strength Asymmetries in Young Elite Sailors: Windsurfing, Optimist, Laser and 420 Classes. Symmetry, 13(3), 427. https://doi.org/10.3390/sym13030427