Postural stability in female rhythmic and artistic gymnastics athletes: the role of visual and somatosensory signals

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Abstract

The study was devoted to the assessment of postural stability in female athletes involved in rhythmic (n = 17), artistic (n = 20) gymnastics and non-athletes (n = 19). The main objective was to identify the features of the center of pressure (CoP) oscillations in female and non-athletes under various conditions of activation of visual and somatosensory inputs. The method of computer stabilometry was used on the automated complex “Stabilan-01-5”. To assess postural stability, the parameters of the stabilographic test were analyzed: linear velocity of CoP movement (ALV, mm/sec), angular velocity of CoP movement (AAV, deg/sec) and ellipse area (EIIS, sq. mm), the Romberg coefficient was calculated. Spectral analysis of stabilographic signals was conducted. The participants performed tests in a normal stance on a hard and soft surface with their eyes closed and open.

The results showed that CoP oscillations in female and non-gymnasts in a calm stance were comparable, but differences were observed on a soft surface. Rhythmic and artistic gymnasts demonstrated better postural stability indicators, which is explained by their ability to integrate proprioceptive and visual signals. Spectral analysis showed smaller fluctuations in the high-frequency range in both rhythmic and artistic gymnasts, which indicates the formation of specific motor and neuromuscular strategies in them. It was also found that rhythmic gymnasts were more dependent on visual control to maintain postural stability, which is probably due to the need to accurately assess the distance and body position when performing elements specific to this sport. The results obtained can serve as a basis for developing individual training programs taking into account sensory integration and movement control in different groups of athletes.

About the authors

E. S. Niazi

Volga Region State University of Physical Culture, Sport and Tourism

Author for correspondence.
Email: katerina58_98@mail.ru
Russian Federation, Kazan

B. R. Samigullin

Volga Region State University of Physical Culture, Sport and Tourism; Kazan Federal University

Email: katerina58_98@mail.ru
Russian Federation, Kazan; Kazan

M. E. Baltin

Volga Region State University of Physical Culture, Sport and Tourism; Sirius University of Science and Technology

Email: katerina58_98@mail.ru
Russian Federation, Kazan; Sirius Federal territory

A. O. Fedyanin

Volga Region State University of Physical Culture, Sport and Tourism

Email: katerina58_98@mail.ru
Russian Federation, Kazan

T. V. Baltina

Kazan Federal University

Email: katerina58_98@mail.ru
Russian Federation, Kazan

L. N. Botova

Volga Region State University of Physical Culture, Sport and Tourism

Email: katerina58_98@mail.ru
Russian Federation, Kazan

A. A. Zverev

Volga Region State University of Physical Culture, Sport and Tourism

Email: katerina58_98@mail.ru
Russian Federation, Kazan

References

  1. Vuillerme N, Teasdale N, Nougier V (2001) The effect of expertise in gymnastics on proprioceptive sensory integration in human subjects. Neurosci Let 311: 73–76. https://doi.org/10.1016/s0304-3940 (01)02147-4
  2. Busquets A, Aranda-Garcia S, Ferrer-Uris B, Marina M, Angulo-Barroso R (2018) Age and gymnastic experience effects on sensory reweighting processes during quiet stand. Gait Posture 63: 177–183. https://doi.org/10.1016/j.gaitpost.2018.05.009
  3. Busquets A, Ferrer-Uris B, Angulo-Barroso R, Federolf P (2021) Gymnastics Experience Enhances the Development of Bipedal-Stance Multi-Segmental Coordination and Control During Proprioceptive Reweighting. Front Psychol 12: 661312. https://doi.org/10.3389/fpsyg.2021.661312
  4. Sozzi S, Ghai S (2022) Incongruity of Geometric and Spectral Markers in the Assessment of Body Sway. Front Neurol 13: 929132. https://doi.org/10.3389/fneur.2022.929132
  5. Vuillerme N, Sporbert C, Pinsault N (2009) Postural adaptation to unilateral hip muscle fatigue during human bipedal standing. Gait Posture 30: 122–125. https://doi.org/10.1016/j.gaitpost.2009.03.004
  6. Shanbhag J, Wolf A, Wechsler I, Fleischmann S, Winkler J, Leyendecker S, Eskofier BM, Koelewijn AD, Wartzack S, Miehling J (2023). Methods for integrating postural control into biomechanical human simulations: A systematic review. J Neuroengin Rehabil 20: 111. https://doi.org/10.1186/s12984-023-01235-3
  7. Peterka RJ (2002) Sensorimotor integration in human postural control. J Neurophysiol 88: 1097–1018. https://doi.org/10.1152/jn.2002.88.3.1097
  8. Sotoudeh GR, Mohammadi R, Mosallanezhad Z, Viitasara E, Soares JJF (2023) A population study on factors associated with unintentional falls among Iranian older adults. BMC Geriatr 23: 860. https://doi.org/10.1186/s12877-023-04571-04
  9. Baloh RW, Fife TD, Zwerling L, Socotch T, Jacobson K, Bell T, Beykirch K (1994) Comparison of static and dynamic posturography in young and older normal people. J Am Geriat Soc 42: 405–412. https://doi.org/10.1111/j.1532-5415.1994.tb07489.x
  10. Furman JM (1994) Posturography: Uses and limitations. Bailliere's Clin Neurol 3: 501–513.
  11. Goel R, De Dios YE, Gadd NE, Caldwell EE, Peters BT, Reschke MF, Bloomberg JJ, Oddsson LIE, Mulavara AP (2017) Assessing Somatosensory Utilization during Unipedal Postural Control. Front Systems Neurosci 11: 21. https://doi.org/10.3389/fnsys.2017.00021
  12. Baltin ME, Fedyanin AO, Mavliev FA, Baltina TV (2023) Characteristics of postural balance in badminton players after functional exercise. Human Sport Med 23: 54–58. https://doi.org/10.14529/hsm23s108
  13. Yiou E, Hamaoui A, Allali G (2018) Editorial: The Contribution of Postural Adjustments to Body Balance and Motor Performance. Front Human Neurosci 12: 487. https://doi.org/10.3389/fnhum.2018.00487
  14. Viseu JP, Yiou E, Morin PO, Olivier A (2023) Sport dependent effects on the sensory control of balance during upright posture: A comparison between professional horseback riders, judokas and non-athletes. Front Human Neurosci 17: 1213385. https://doi.org/10.3389/fnhum.2023.1213385
  15. Andreeva A, Melnikov A, Skvortsov D, Akhmerova K, Vavaev A, Golov A, Draugelite V, Nikolaev R, Chechelnickaia S, Zhuk D, Bayerbakh A, Nikulin V, Zemková E (2021) Postural stability in athletes: The role of sport direction. Gait Posture 89: 120–125. https://doi.org/10.1016/j.gaitpost.2021.07.005
  16. Vater C, Strasburger H (2021) Topical Review: The Top Five Peripheral Vision Tools in Sport. Optom Vis Sci 98: 704–722. https://doi.org/10.1097/OPX.0000000000001732
  17. Mallek M, Benguigui N, Dicks M, Thouvarecq R (2017) Sport expertise in perception-action coupling revealed in a visuomotor tracking task. Eur J Sport Sci 17: 1270–1278. https://doi.org/10.1080/17461391.2017.1375014
  18. Hrysomallis C (2011) Balance ability and athletic performance. Sports Med 41: 221–232. https://doi.org/10.2165/11538560-000000000-00000
  19. Roy MM, Redlich D, Lamison E, Memmert D (2024) The naturalness bias in sport. Psychol Sport Exerc 70: 102537. https://doi.org/10.1016/j.psychsport.2023.102537
  20. Taube W, Gruber M, Gollhofer A (2008) Spinal and supraspinal adaptations associated with balance training and their functional relevance. Acta Physiol (Oxf) 193: 101–116. https://doi.org/10.1111/j.1748-1716.2008.01850.x
  21. Paillard T (2017) Plasticity of the postural function to sport and/or motor experience. Neurosci Biobehav Rev 72: 129–152. https://doi.org/10.1016/j.neubiorev.2016.11.015
  22. Paillard T (2019) Relationship Between Sport Expertise and Postural Skills. Front Psychol 10: 1428. https://doi.org/10.3389/fpsyg.2019.01428
  23. Seidel O, Carius D, Kenville R, Ragert P (2017) Motor learning in a complex balance task and associated neuroplasticity: A comparison between endurance athletes and nonathletes. J Neurophysiol 118: 1849–1860. https://doi.org/10.1152/jn.00419.2017
  24. Bradshaw EJ, Le Rossignol P (2004) Anthropometric and biomechanical field measures of floor and vault ability in 8- to 14-year-old talent-selected gymnasts. Sports Biomech 3: 249–262. https://doi.org/10.1080/14763140408522844
  25. Nassib SH, Mkaouer B, Riahi SH, Wali SM, Nassib S (2020) Prediction of Gymnastics Physical Profile Through an International Program Evaluation in Women Artistic Gymnastics. J Strength Cond Res 34: 577–586. https://doi.org/10.1519/JSC.0000000000001902
  26. Opala-Berdzik A, Głowacka M, Słomka KJ (2021) Characteristics of Functional Stability in Young Adolescent Female Artistic Gymnasts. J Hum Kinet 77: 51–59. https://doi.org/10.2478/hukin-2021-0051
  27. Opala-Berdzik A, Głowacka M, Juras G (2021). Postural sway in young female artistic and acrobatic gymnasts according to training experience and anthropometric characteristics. BMC Sports Sci Med Rehabil 13: 11. https://doi.org/10.1186/s13102-021-00236-w
  28. Sozzi S, Do MC, Schieppati M (2022) Vertical ground reaction force oscillation during standing on hard and compliant surfaces: The “postural rhythm”. Front Neurol 13: 975752. https://doi.org/10.3389/fneur.2022.975752
  29. Gallamini M, Piastra G, Lucarini S, Porzio D, Ronchi M, Pirino A, Scoppa F, Masiero S, Tognolo L (2021) Revisiting the Instrumented Romberg Test: Can Today's Technology Offer a Risk-of-Fall Screening Device for Senior Citizens? An Experience-Based Approach. Life (Basel) 11: 161. https://doi.org/10.3390/life11020161
  30. Mezenchuk AI, Kubryak OV (2022) The Romberg's sign: From walking in the dark to tests on the force plate. Alman Clin Med 50: 335–347. https://doi.org/10.18786/2072-0505-2022-50-040
  31. Wodarski P (2023) Trend Change Analysis as a New Tool to Complement the Evaluation of Human Body Balance in the Time and Frequency Domains. J Hum Kinet 87: 51–62. https://doi.org/10.5114/jhk/163058
  32. Dakinova MV, Bikchentaeva LM, Tagirova IS, Baltina TV, Yafarova GG, Sachenkov OA (2022) Spectral analysis of stabilographic signals by Fourier and Hilbert – Huang methods. 2022 VIII Int Confer Informat Technol Nanotechnol (ITNT): 1–4. https://doi.org/10.1109/ITNT55410.2022
  33. Lin IS, Lai DM, Ding JJ, Chien A, Cheng CH, Wang SF, Wang JL, Kuo CL, Hsu WL (2019) Reweighting of the sensory inputs for postural control in patients with cervical spondylotic myelopathy after surgery. J Neuroeng Rehabil 16: 96. https://doi.org/10.1186/s12984-019-0564-2
  34. Di Corrado D, Francavilla VC, La Paglia R, Parisi MC, Buscemi A, Coco M (2023) Short-Term Effects of Specific Sensorimotor Training on Postural Assessment in Healthy Individuals: A Pilot Study with a Randomized Placebo-Controlled Trial. J Funct Morphol Kinesiol 8: 46. https://doi.org/10.3390/jfmk8020046
  35. Zemková E, Kováčiková Z. (2023) Sport-specific training induced adaptations in postural control and their relationship with athletic performance. Front Hum Neurosci 16: 1007804. https://doi.org/10.3389/fnhum.2022.1007804
  36. Paillard T, Bizid R, Dupui P (2007) Do sensorial manipulations affect subjects differently depending on their postural abilities? Br J Sports Med 41: 435–438. https://doi.org/10.1136/bjsm.2006.032904
  37. Garcia C, Barela JA, Viana AR, Barela AM (2011) Influence of gymnastics training on the development of postural control. Neurosci Lett 492: 29–32. https://doi.org/10.1016/j.neulet.2011.01.047
  38. Ivanenko Y, Gurfinkel VS (2018) Human Postural Control. Front Neurosci 12: 171. https://doi.org/10.3389/fnins.2018.00171
  39. Giboin LS, Gruber M, Kramer A (2015) Task-specificity of balance training. Hum Mov Sci 44: 22–31. https://doi.org/10.1016/j.humov.2015.08.012
  40. Patel M, Fransson PA, Johansson R, Magnusson M (2011) Foam posturography: Standing on foam is not equivalent to standing with decreased rapidly adapting mechanoreceptive sensation. Exp Brain Res 208: 519–527. https://doi.org/10.1007/s00221-010-2498-6
  41. Bringoux L, Marin L, Nougier V, Barraud PA, Raphel C (2000) Effects of gymnastics expertise on the perception of body orientation in the pitch dimension. J Vestib Res 10: 251–258.
  42. Ó'Reilly D, Federolf P (2021) Identifying differences in gait adaptability across various speeds using movement synergy analysis. PLoS One 16: e0244582. https://doi.org/10.1371/journal.pone.0244582
  43. Vuillerme N, Nougier V (2004) Attentional demand for regulating postural sway: The effect of expertise in gymnastics. Brain Res Bull 63: 161–165. https://doi.org/10.1016/j.brainresbull.2004.02.006
  44. Sozzi S, Nardone A, Schieppati M (2021) Specific Posture-Stabilising Effects of Vision and Touch Are Revealed by Distinct Changes of Body Oscillation Frequencies. Front Neurol 12: 756984. https://doi.org/10.3389/fneur.2021.756984
  45. Jeka J, Kiemel T, Creath R, Horak F, Peterka R (2004) Controlling human upright posture: Velocity information is more accurate than position or acceleration. J Neurophysiol 92: 2368–2379. https://doi.org/10.1152/jn.00983.2003
  46. Caron O, Gelat T, Rougier P, Blanchi JP (2000) A comparative analysis of the center of gravity and center of pressure trajectory path lengths in standing posture: An estimation of active stiffness. J Appl Biomech 16: 234–247. https://doi.org/10.1123/jab.16.3.234
  47. Hill MW, Wdowski MM, Rosicka K, Kay AD, Muehlbauer T (2023) Exploring the relationship of static and dynamic balance with muscle mechanical properties of the lower limbs in healthy young adults. Front Physiol 14: 1168314. https://doi.org/10.3389/fphys.2023.1168314
  48. Theodoropoulou A, Markou KB, Vagenakis GA, Benardot D, Leglise M, Kourounis G, Vagenakis AG, Georgopoulos NA (2005) Delayed but normally progressed puberty is more pronounced in artistic compared with rhythmic elite gymnasts due to the intensity of training. J Clin Endocrinol Metab 90: 6022–6027. https://doi.org/10.1210/jc.2005-1762
  49. Cuk I, Marinšek M (2013) Landing quality in artistic gymnastics is related to landing symmetry. Biol Sport 30: 29–33. https://doi.org/10.5604/20831862.1029818
  50. Singh NB, Taylor WR, Madigan ML, Nussbaum MA (2012) The spectral content of postural sway during quiet stance: Influences of age, vision and somatosensory inputs. J Electromyogr Kinesiol 22: 131–136. https://doi.org/10.1016/j.jelekin.2011.10.007
  51. Bikchentaeva L, Nikulina M, Shulman A, Baltin M, Zheltukhina A, Semenova E, Smirnova V, Klepikova S, Baltina T (2024) Different Factors Influencing Postural Stability during Transcutaneous Electrical Stimulation of the Cervical Spinal Cord. J Funct Morphol Kinesiol 9: 142. https://doi.org/10.3390/jfmk90301422012
  52. Kirchner M, Schubert P, Schmidtbleicher D, Haas CT (2012) Evaluation of the temporal structure of postural sway fluctuations based on a comprehensive set of analysis tools. Physica A Stat Mech 391: 4692–4703. https://doi.org/10.1016/j.physa.2012.05.034
  53. Lang CE, Bastian AJ (2002) Cerebellar damage impairs automaticity of a recently practiced movement. J Neurophysiol 87: 1336–1347. https://doi.org/10.1152/jn.00368.2001
  54. St-Amant G, Rahman T, Polskaia N, Fraser S, Lajoie Y (2020) Unveilling the cerebral and sensory contributions to automatic postural control during dual-task standing. Hum Mov Sci 70: 102587. https://doi.org/10.1016/j.humov.2020.102587
  55. Knikou M, Rymer Z (2002) Effects of changes in hip joint angle on H-reflex excitability in humans. Exp Brain Res 143: 149–159. https://doi.org/10.1007/s00221-001-0978-4
  56. Winter DA, Patla AE, Prince F, Ishac M, Gielo-Perczak K (1998) Stiffness control of balance in quiet standing. J Neurophysiol 80: 1211–1221. https://doi.org/10.1152/jn.1998.80.3.1211.
  57. Yeh TT, Cluff T, Balasubramaniam R (2014) Visual reliance for balance control in older adults persists when visual information is disrupted by artificial feedback delays. PLoS One 9: e91554. https://doi.org/10.1371/journal.pone.0091554
  58. Kioumourtzoglou E, Derri V, Mertzanidou O, Tzetzis G (1997) Experience with perceptual and motor skills in rhythmic gymnastics. Percept Mot Skills 84: 1363–1372. https://doi.org/10.2466/pms.1997.84.3c.1363
  59. Calavalle AR, Sisti D, Rocchi MB, Panebianco R, Del Sal M, Stocchi V (2008) Postural trials: Expertise in rhythmic gymnastics increases control in lateral directions. Eur J Appl Physiol 104: 643–649. https://doi.org/10.1007/s00421-008-0815-6
  60. Friedrich M, Grein HJ, Wicher C, Schuetze J, Mueller A, Lauenroth A, Hottenrott K, Schwesig R (2008) Influence of pathologic and simulated visual dysfunctions on the postural system. Exp Brain Res 186: 305–314. https://doi.org/10.1007/s00221-007-1233-4
  61. Asseman FB, Caron O, Crémieux J (2008) Are there specific conditions for which expertise in gymnastics could have an effect on postural control and performance? Gait Posture 27: 76–81. https://doi.org/10.1016/j.gaitpost.2007.01.004
  62. Asseman F, Caron O, Crémieux J (2005) Effects of the removal of vision on body sway during different postures in elite gymnasts. Int J Sports Med 26: 116–119. https://doi.org/10.1055/s-2004-830529
  63. Janura M, Procházková M, Svoboda Z, Bizovská L, Jandová S, Konečný P (2019) Standing balance of professional ballet dancers and non-dancers under different conditions. PloS One 14: e0224145. https://doi.org/10.1371/journal.pone.0224145
  64. Pohle C, Becker L, Baumeister J (2024) Alterations of postural control across the menstrual cycle – A systematic review. Gait Posture 107: 72–82. https://doi.org/10.1016/j.gaitpost.2023.09.010

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