Effects of Neuromuscular Training on Motor Competence and Physical Performance in Young Female Volleyball Players
Abstract
:1. Introduction
2. Materials and Methods
2.1. Study Design
2.2. Participants
2.3. Testing Procedures
2.4. Motor Competence Tests
2.4.1. Walking Backward
2.4.2. Lateral Jumps
2.4.3. One Leg Jumping
2.4.4. Shifting Platforms
2.5. Physical Performance Tests
2.5.1. 10-m Sprint
2.5.2. Modified T-test
2.5.3. Plank
2.5.4. Vertical Jump (Countermovement Jump with Arm Swing)
2.5.5. Medicine Ball Throw (Overhead)
2.6. Neuromuscular Training Program
2.7. Statistical Analysis
3. Results
3.1. Motor Competence
3.2. Physical Performance
4. Discussion
5. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
- Cattuzzo, M.T.; dos Santos Henrique, R.; Ré, A.H.N.; de Oliveira, I.S.; Melo, B.M.; de Sousa Moura, M.; de Araújo, R.C.; Stodden, D. Motor competence and health related physical fitness in youth: A systematic review. J. Sci. Med. Sport 2016, 19, 123–129. [Google Scholar] [CrossRef] [PubMed]
- Losse, A.; Henderson, S.E.; Elliman, D.; Hall, D.; Knight, E.; Jongmans, M. Clumsiness in Children-Do they Grow out Of It? A 10-Year Follow-Up Study. Dev. Med. Child. Neurol. 1991, 33, 55–68. [Google Scholar] [CrossRef] [PubMed]
- Mandich, A.D.; Polatajko, H.J.; Rodger, S. Rites of passage: Understanding participation of children with developmental coordination disorder. Hum. Mov. Sci. 2003, 22, 583–595. [Google Scholar] [CrossRef] [PubMed]
- Smyth, M.M.; Anderson, H.I. Coping with clumsiness in the school playground: Social and physical play in children with coordination impairments. Br. J. Dev. Psychol. 2000, 18, 389–413. [Google Scholar] [CrossRef]
- Gabbett, T.; Georgieff, B. Physiological and anthropometric characteristics of Australian junior national, state, and novice volleyball players. J. Strength Cond. Res. 2007, 21, 902–908. [Google Scholar]
- Sheppard, J.M.; Gabbett, T.J.; Stanganelli, L.C.R. An analysis of playing positions in elite men’s volleyball: Considerations for competition demands and physiologic characteristics. J. Strength Cond. Res. 2009, 23, 1858–1866. [Google Scholar] [CrossRef] [Green Version]
- Kim, Y.Y.; Park, S.E. Comparison of whole-body vibration exercise and plyometric exercise to improve isokinetic muscular strength, jumping performance and balance of female volleyball players. J. Phys. Ther. Sci. 2016, 28, 3140–3144. [Google Scholar] [CrossRef] [Green Version]
- Trajković, N.; Krističević, T.; Baić, M. Effects of plyometric training on sport-specific tests in female volleyball players. Acta Kinesiol. 2016, 10, 20–24. [Google Scholar]
- Verhošanski, J.I. Razvoj Snage u Sportu Developing Strength in Sport; Partizan RS: Beograd, Serbia, 1979. [Google Scholar]
- Pion, J.A.; Fransen, J.; Deprez, D.N.; Segers, V.I.; Vaeyens, R.; Philippaerts, R.M.; Lenoir, M. Stature and jumping height are required in female volleyball, but motor coordination is a key factor for future elite success. J. Strength Cond. Res. 2015, 29, 1480–1485. [Google Scholar] [CrossRef]
- Pic, M.; Lavega-Burgués, P. Estimating motor competence through motor games. RICYDE Rev. Int. Cienc. Deporte 2019, 15, 5–19. [Google Scholar] [CrossRef]
- Pic, M.; Lavega-Burgués, P.; March-Llanes, J. Motor behaviour through traditional games. Educ. Stud. 2019, 45, 742–755. [Google Scholar] [CrossRef]
- Ruiz-Pérez, L.M.; Palomo-Nieto, M.; Gómez-Ruano, M.A.; Navia-Manzano, J.A. When We Were Clumsy: Some Memories of Adults who were Low Skilled in Physical Education at School. J. Phys. Educ. Sports Manag. 2018, 5, 30–36. [Google Scholar]
- Silva, A.F.; Clemente, F.M.; Lima, R.; Nikolaidis, P.T.; Rosemann, T.; Knechtle, B. The effect of plyometric training in volleyball players: A systematic review. Int. J. Environ. Res. Public Health 2019, 16, 2960. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Pérez-Turpin, J.A.; Zmijewski, P.; Jimenez-Olmedo, J.M.; Jové-Tossi, M.A.; Martínez-Carbonell, A.; Suárez-Llorca, C.; Andreu-Cabrera, E. Effects of whole body vibration on strength and jumping performance in volleyball and beach volleyball players. Biol. Sport 2014, 31, 239–245. [Google Scholar] [CrossRef] [Green Version]
- Jaworska, J.; Micielska, K.; Kozłowska, M.; Wnorowski, K.; Skrobecki, J.; Radzimiński, L.; Babińska, A.; Rodziewicz, E.; Lombardi, G.; Ziemann, E. A 2-week specific volleyball training supported by the whole body cryostimulation protocol induced an increase of growth factors and counteracted deterioration of physical performance. Front. Physiol. 2018, 9, 1711. [Google Scholar] [CrossRef] [Green Version]
- Fathi, A.; Hammami, R.; Moran, J.; Borji, R.; Sahli, S.; Rebai, H. Effect of a 16-Week Combined Strength and Plyometric Training Program Followed by a Detraining Period on Athletic Performance in Pubertal Volleyball Players. J. Strength Cond. Res. 2019, 33, 2117–2127. [Google Scholar] [CrossRef] [Green Version]
- Rodrigues, L.P.; Stodden, D.F.; Lopes, V.P. Developmental pathways of change in fitness and motor competence are related to overweight and obesity status at the end of primary school. J. Sci. Med. Sport 2016, 19, 87–92. [Google Scholar] [CrossRef]
- McCambridge, T.M.; Bernhardt, D.T.; Brenner, J.S.; Congeni, J.A.; Gomez, J.E.; Gregory, A.J.M.; Gregory, D.B.; Griesemer, B.A.; Reed, F.E.; Rice, S.G.; et al. Active healthy living: Prevention of childhood obesity through increased physical activity. Pediatrics 2006, 117, 1834–1842. [Google Scholar]
- Small, E.W.; McCambridge, M.T.; Benjamin, H.J.; Bernhardt, D.T.; Brenner, J.S.; Cappetta, C.T.; Congeni, J.A.; Gregory, A.J.M.; Griesemer, B.A.; Reed, F.E.; et al. Strength training by children and adolescents. Pediatrics 2008, 121, 835–840. [Google Scholar]
- Faigenbaum, A.; Micheli, L. Current Comment on Youth Strength Training; American College of Sports Medicine: Ndianapolis, IN, USA, 1998. [Google Scholar]
- Myer, G.; Faigenbaum, A.; Chu, D.; Falkel, J.; Ford, K.; Best, T.; Hewett, T. Integrative Training for Children and Adolescents: Techniques and Practices for Reducing Sports-Related Injuries and Enhancing Athletic Performance. Phys. Sportsmed. 2011, 39, 74–84. [Google Scholar] [CrossRef]
- Faigenbaum, A.D.; Farrell, A.; Fabiano, M.; Radler, T.; Naclerio, F.; Ratamess, N.A.; Kang, J.; Myer, G.D. Effects of Integrative Neuromuscular Training on Fitness Performance in Children. Pediatr. Exerc. Sci. 2011, 23, 573–584. [Google Scholar] [CrossRef] [Green Version]
- Nunes, A.C.C.A.; Cattuzzo, M.T.; Faigenbaum, A.D.; Mortatti, A.L. Effects of Integrative Neuromuscular Training and Detraining on Countermovement Jump Performance in Youth Volleyball Players. J. Strength Cond. Res. 2019, 10, 1–6. [Google Scholar] [CrossRef]
- Sugimoto, D.; Myer, G.D.; Bush, H.M.; Hewett, T.E. Effects of compliance on trunk and hip integrative neuromuscular training on hip abductor strength in female athletes. J. Strength Cond. Res. 2014, 28, 1187–1194. [Google Scholar] [CrossRef] [Green Version]
- Myer, G.D.; Ford, K.R.; Hewett, T.E. Rationale and clinical techniques for anterior cruciate ligament injury prevention among female athletes. J. Athl. Train. 2004, 39, 352–364. [Google Scholar] [PubMed]
- Mirwald, R.L.; Baxter-Jones, A.D.G.; Bailey, D.A.; Beunen, G.P. An assessment of maturity from anthropometric measurements. Med. Sci. Sports Exerc. 2002, 34, 689–694. [Google Scholar] [PubMed]
- Nobre, G.G.; De Almeida, M.B.; Nobre, I.G.; Dos Santos, F.K.; Brinco, R.A.; Arruda-Lima, T.R.; De-Vasconcelos, K.L.; De-Lima, J.G.; Borba-Neto, M.E.; Damasceno-Rodrigues, E.M.; et al. Twelve weeks of plyometric training improves motor performance of 7- to 9-year-old boys who were overweight/obese: A randomized controlled intervention. J. Strength Cond. Res. 2017, 31, 2091–2099. [Google Scholar] [CrossRef] [PubMed]
- Faber, I.R.; Oosterveld, F.G.J.; Nijhuis-Van der Sanden, M.W.G. Does an Eye-Hand Coordination Test Have Added Value as Part of Talent Identification in Table Tennis? A Validity and Reproducibility Study. PLoS ONE 2014, 9, e85657. [Google Scholar] [CrossRef] [Green Version]
- Trajković, N.; Milanović, Z.; Sporis, G.; Milić, V.; Stanković, R. The effects of 6 weeks of preseason skill based conditioning on physical performance in male volleyball players. J. Strength Cond. Res. 2012, 26, 1475–1480. [Google Scholar] [CrossRef] [Green Version]
- Sassi, R.H.; Dardouri, W.; Yahmed, M.H.; Gmada, N.; Mahfoudhi, M.E.; Gharbi, Z. Relative and absolute reliability of a modified agility t-test and its relationship with vertical jump and straight sprint. J. Strength Cond. Res. 2009, 23, 1644–1651. [Google Scholar] [CrossRef]
- Padulo, J.; Ardigò, L.P.; Bianco, M.; Cular, D.; Madic, D.; Markoski, B.; Dhahbi, W. Validity and Reliability of a New Specific Parkour Test: Physiological and Performance Responses. Front. Physiol. 2019, 10, 1362. [Google Scholar] [CrossRef]
- Sattler, T.; Hadžic, V.; Derviševic, E.; Markovic, G. Vertical jump performance of professional male and female volleyball players: Effects of playing position and competition level. J. Strength Cond. Res. 2015, 29, 1486–1493. [Google Scholar] [CrossRef] [PubMed]
- Gabbett, T.; Georgieff, B.; Anderson, S.; Cotton, B.; Savovic, D.; Nicholson, L. Changes in skill and physical fitness following training in talent-identified volleyball players. J. Strength Cond. Res. 2006, 20, 29–35. [Google Scholar] [PubMed]
- Lloyd, R.S.; Faigenbaum, A.D.; Stone, M.H.; Oliver, J.L.; Jeffreys, I.; Moody, J.A.; Brewer, C.; Pierce, K.C.; McCambridge, T.M.; Howard, R.; et al. Position statement on youth resistance training: The 2014 International Consensus. Br. J. Sports Med. 2014, 48, 498–505. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Hopper, A.; Haff, E.E.; Barley, O.R.; Joyce, C.; Lloyd, R.S.; Haff, G.G. Neuromuscular training improves movement competency and physical performance measures in 11-13-year-old female netball athletes. J. Strength Cond. Res. 2017, 31, 1165–1176. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Hopkins, W.G.; Marshall, S.W.; Batterham, A.M.; Hanin, J. Progressive Statistics for Studies in Sports Medicine and Exercise Science. Med. Sci. Sport. Exerc. 2009, 41, 3–13. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Pallant, J. A Step by Step Guide to Data Analysis Using SPSS for Windows, 3rd ed.; McGraw Hill Open University Press: New York, NY, USA, 2007. [Google Scholar]
- Vandorpe, B.; Vandendriessche, J.B.; Vaeyens, R.; Pion, J.; Lefevre, J.; Philippaerts, R.M.; Lenoir, M. The value of a non-sport-specific motor test battery in predicting performance in young female gymnasts. J. Sports Sci. 2012, 30, 497–505. [Google Scholar] [CrossRef]
- Fransen, J.; Deprez, D.; Pion, J.; Tallir, I.B.; D’Hondt, E.; Vaeyens, R.; Lenoir, M.; Philippaerts, R.M. Changes in physical fitness and sports participation among children with different levels of motor competence: A 2-year longitudinal study. Pediatr. Exerc. Sci. 2014, 26, 11–21. [Google Scholar] [CrossRef]
- Vandorpe, B.; Vandendriessche, J.; Vaeyens, R.; Pion, J.; Matthys, S.; Lefevre, J.; Philippaerts, R.; Lenoir, M. Relationship between sports participation and the level of motor coordination in childhood: A longitudinal approach. J. Sci. Med. Sport 2012, 15, 220–225. [Google Scholar] [CrossRef]
- Deprez, D.N.; Fransen, J.; Lenoir, M.; Philippaerts, R.M.; Vaeyens, R. A retrospective study on anthropometrical, physical fitness, and motor coordination characteristics that influence dropout, contract status, and first-team playing time in high-level soccer players aged eight to eighteen years. J. Strength Cond. Res. 2015, 29, 1692–1704. [Google Scholar] [CrossRef]
- Duncan, M.J.; Hames, T.; Eyre, E.L.J. Sequencing Effects of Object Control and Locomotor Skill During Integrated Neuromuscular Training in 6- to 7-Year-Old Children. J. Strength Cond. Res. 2019, 33, 2262–2274. [Google Scholar] [CrossRef]
- Duncan, M.J.; Eyre, E.L.J.; Oxford, S.W. The effects of 10-week integrated neuromuscular training on fundamental movement skills and physical self-efficacy in 6–7-year-old children. J. Strength Cond. Res. 2018, 32, 3348–3356. [Google Scholar] [CrossRef]
- Pekas, D.; Mačak, D.; Zobenica, A.K. Small-sided games are more effective than instructional training for improving vertical jump performance and passing in young volleyball players. EQOL J. 2019, 11, 13–21. [Google Scholar] [CrossRef]
- Fort-Vanmeerhaeghe, A.; Romero-Rodriguez, D.; Lloyd, R.S.; Kushner, A.; Myer, G.D. Integrative Neuromuscular Training in Youth Athletes. Part II: Strategies to Prevent Injuries and Improve Performance. Strength Cond. J. 2016, 38, 9–27. [Google Scholar] [CrossRef] [Green Version]
- Rumpf, M.C.; Cronin, J.B.; Pinder, S.D.; Oliver, J.; Hughes, M. Effect of different training methods on running sprint times in male youth. Pediatr. Exerc. Sci. 2012, 24, 170–186. [Google Scholar] [CrossRef] [PubMed]
- Pic, M.; Navarro-Adelantado, V.; Jonsson, G.K. Gender Differences in Strategic Behavior in a Triadic Persecution Motor Game Identified Through an Observational Methodology. Front. Psychol. 2020, 11, 109. [Google Scholar] [CrossRef] [PubMed]
- Hewett, T.E.; Myer, G.D.; Ford, K.R. Decrease in neuromuscular control about the knee with maturation in female athletes. J. Bone Jt. Surg. Ser. A 2004, 86, 1601–1608. [Google Scholar] [CrossRef] [Green Version]
- Chappell, J.D.; Limpisvasti, O. Effect of a neuromuscular training program on the kinetics and kinematics of jumping tasks. Am. J. Sports Med. 2008, 36, 1081–1086. [Google Scholar] [CrossRef]
- Veličković, M.; Bojić, I.; Berić, D. The Effects Of Programmed Training On Development Of Explosive Strength In Female Volleyball Players. Facta Univ. Ser. Phys. Educ. Sport 2018, 15, 493. [Google Scholar] [CrossRef]
- Meylan, C.; Malatesta, D. Effects of in-season plyometric training within soccer practice on explosive actions of young players. J. Strength Cond. Res. 2009, 23, 2605–2613. [Google Scholar] [CrossRef]
- Panagoulis, C.; Chatzinikolaou, A.; Avloniti, A.; Leontsini, D.; Deli, C.K.; Draganidis, D.; Stampoulis, T.; Oikonomou, T.; Papanikolaou, K.; Rafailakis, L.; et al. In-Season Integrative Neuromuscular Strength Training Improves Performance of Early-Adolescent Soccer Athletes. J. Strength Cond. Res. 2020, 34, 516–526. [Google Scholar] [CrossRef]
Group | Age (years) | Height (cm) | Mass (kg) |
---|---|---|---|
NTG | 11.12 ± 0.68 | 158.28 ± 8.07 | 47.83 ± 8.97 |
CON | 10.96 ± 0.75 | 157.37 ± 10.21 | 48.59 ± 13.46 |
Tuesday | Duration | Thursday | Duration |
---|---|---|---|
Deep squat | 2 sets of 10–12 rep | Wall sits | 2 sets, 35–50 s |
Forward lunges with Med Ball | 2 sets of 7–10 rep | Backward lunges with Med Ball | 2 sets of 7–10 rep |
Push-ups | 3 sets of 7–12 rep | Volleyball push-ups | 3 sets of 7–12 rep |
Med ball throw (from the chest, side throw) | 2 sets of 5–15 rep | Med ball throw (overhead, backward) | 2 sets of 5–15 rep |
Plank | 60-90 s | Crunches, Side plank | 60–90 s |
Hurdle jumps | 2 sets of 8–12 rep | Knee tucks | 2 sets of 8–12 rep |
Squat jump | 2 sets of 6–10 rep | Box jumps | 2 sets of 6–10 rep |
Four-way jumps (forward, backward, side to side) | 60 s | Single leg four-way jumps | 60 s |
Lunge jumps | 8–12 rep | Block jumps | 2 sets of 8–12 rep |
Agility ladder: Various patterns | 2 rep | Agility ladder: various patterns | 2 rep |
Group | Pretest | Posttest | ES | % change | p-value, η2p | |
---|---|---|---|---|---|---|
MQKTK | ||||||
NTG | 98.58 ± 8.82 | 112.33 ± 12.36 | 1.3 | 13.9 % | Group: p = 0.014, η2p: 0.15 Time: p ≤ 0.001, η2p: 0.66 Interaction: p < 0.001, η2p: 0.38 | |
CON | 95.89 ± 8.60 | 99.72 ± 8.39 | 0.5 | 4.0 % | ||
KTK walking backward | ||||||
NTG | 38.81 ± 10.21 | 44.81 ± 10.77 | 0.6 | 15.5 % | Group: p = 0.037, η2p: 0.11 Time: p < 0.001, η2p: 0.36 Interaction: p = 0.065, η2p: 0.09 | |
CON | 33.89 ± 9.66 | 36.39 ± 9.13 | 0.3 | 7.4 % | ||
KTK one leg jumping | ||||||
NTG | 37.52 ± 8.87 | 43.38 ± 11.49 | 0.6 | 15.6 % | Group: p = 0.031, η2p: 0.12 Time: p < 0.001, η2p: 0.4 Interaction: p = 0.05, η2p: 0.1 | |
CON | 32.61 ± 8.81 | 35.06 ± 8.56 | 0.3 | 7.5 % | ||
KTK lateral jumps | ||||||
NTG | 45.57 ± 6.56 | 55.67 ± 9.53 | 1.2 | 22.2 % | Group: p = 0.52, η2p: 0.011 Time: p < 0.001, η2p: 0.61 Interaction: p < 0.001, η2p: 0.39 | |
CON | 47.67 ± 9.64 | 49.89 ± 10.98 | 0.2 | 4.7 % | ||
KTK shifting platforms | ||||||
NTG | 33.71 ± 4.71 | 39.52 ± 3.96 | 1.3 | 17.2 % | Group: p = 0.101, η2p: 0.07 Time: p < 0.001, η2p: 0.36 Interaction: p = 0.003, η2p: 0.21 | |
CON | 33.94 ± 5.07 | 35.00 ± 4.79 | 0.2 | 3.1 % |
Group | Pretest | Posttest | ES | % change | p-value, η2p | |
---|---|---|---|---|---|---|
Sprint10 (s) | ||||||
NTG | 2.29 ± 0.19 | 2.18 ± 0.15 | −0.6 | −4.8 % | Group: p = 0.44, η2p: 0.01 Time: p = 0.001, η2p: 0.16 Interaction: p = 0.8, η2p: 0.001 | |
CON | 2.31 ± 0.19 | 2.21 ± 0.15 | −0.7 | −4.3% | ||
Modified T-test (s) | ||||||
NTG | 7.61 ± 0.55 | 7.38 ± 0.55 | −0.6 | −3.0% | Group: p = 0.33, η2p: 0.02 Time: p < 0.001, η2p: 0.37 Interaction: p < 0.001, η2p: 0.17 | |
CON | 7.39 ± 0.57 | 7.32 ± 0.64 | −0.2 | −0.9% | ||
Plank (s) | ||||||
NTG | 86.60 ± 32.54 | 86.91 ± 31.22 | 0.0 | 0.4% | Group: p = 0.34, η2p: 0.01 Time: p = 0.56, η2p: 0.01 Interaction: p = 0.30, η2p: 0.02 | |
CON | 97.85 ± 55.90 | 96.73 ± 52.75 | −0.0 | −1.1% | ||
Vertical jump (cm) | ||||||
NTG | 21.92 ± 4.51 | 24.60 ± 4.80 | 0.6 | 12.2% | Group: p = 0.01, η2p: 0.11 Time: p < 0.001, η2p: 0.38 Interaction: p = 0.04, η2p: 0.07 | |
CON | 19.79 ± 4.12 | 21.10 ± 3.80 | 0.3 | 6.6% | ||
Medicine ball throw (m) | ||||||
NTG | 4.28 ± 0.71 | 4.52 ± 0.72 | 0.5 | 5.6% | Group: p = 0.03, η2p: 0.07 Time: p = 0.002, η2p: 0.14 Interaction: p = 0.4, η2p: 0.01 | |
CON | 3.96 ± 0.75 | 4.10 ± 0.68 | 0.3 | 3.5% |
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Trajković, N.; Bogataj, Š. Effects of Neuromuscular Training on Motor Competence and Physical Performance in Young Female Volleyball Players. Int. J. Environ. Res. Public Health 2020, 17, 1755. https://doi.org/10.3390/ijerph17051755
Trajković N, Bogataj Š. Effects of Neuromuscular Training on Motor Competence and Physical Performance in Young Female Volleyball Players. International Journal of Environmental Research and Public Health. 2020; 17(5):1755. https://doi.org/10.3390/ijerph17051755
Chicago/Turabian StyleTrajković, Nebojša, and Špela Bogataj. 2020. "Effects of Neuromuscular Training on Motor Competence and Physical Performance in Young Female Volleyball Players" International Journal of Environmental Research and Public Health 17, no. 5: 1755. https://doi.org/10.3390/ijerph17051755
APA StyleTrajković, N., & Bogataj, Š. (2020). Effects of Neuromuscular Training on Motor Competence and Physical Performance in Young Female Volleyball Players. International Journal of Environmental Research and Public Health, 17(5), 1755. https://doi.org/10.3390/ijerph17051755