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Serebral Palsili Çocuklarda Gövde Stabilizasyonu ve Rehabilitatif Etkileri

Year 2022, , 123 - 131, 29.04.2022
https://doi.org/10.47493/abantmedj.957341

Abstract

Postüral reaksiyonlarda dinamik stabilizasyonun sağlanmasında gövdenin rolü büyüktür. Ayrıca üst ve alt ekstremite hareketlerini destekleme, yüklenme ve omurganın korunmasında kritik önemi vardır. Gövde stabilizasyonu, yerçekimi, iç ve dış pertürbasyonların olumsuz etkilerine rağmen gövde postüral kontrol ve hareketin sürdürülmesidir.
Serebral palsi (SP), ilerleyici olmayan nörogelişimsel bir hastalıktır. Zayıf gövde kontrolü, SP'li çocuklar arasında yaygındır. Çocuğun aktivitesi ve katılımına olan katkısı nedeniyle gövde stabilitesi rehabilitasyonda önemlidir. Bununla birlikte, SP rehabilitasyonunda gövde stabilizasyon eğitiminin sonuçları sınırlı olup SP'de gövde stabilizasyonunun önemine vurgu yapan çok az sayıda araştırma yapılmıştır.
SP'li çocuklarda destekleyici ve yeni rehabilitasyon yöntemlerine artan ilgiyi göz önünde bulundurarak, bu makale (i) boyun ve gövde stabilizasyonunun temel özelliklerini tanımlamayı (ii) SP'li hastalarda farklı yaklaşımlara dayalı boyun ve gövde stabilizasyon yöntemlerinin olası terapötik etkilerinin özetini vermeyi amaçlamıştır. Sonuç olarak literatür, gövde instabilitesinin olumsuz etkilerini azaltmada bu egzersizlerin rehabilitasyon sürecine yarar sağladığını göstermektedir. Farklı tekniklerle gövde stabilizasyonunun arttırılması çocuğun üst-alt ekstremite becerilerini, görsel-algısal fonksiyonlarını ve denge yeteneklerini geliştirebilir.

References

  • 1. Kibler WB, Press J, Sciascia A. The role of core stability in athletic function. Sports Medicine 2006; 36(3): 189-198.
  • 2. Pigeon P, Yahia LH, Mitnitski AB, Feldman AG. Superposition of independent units of coordination during pointing movements involving the trunk with and without visual feedback. Exp Brain Res 2000; 131: 336–49.
  • 3. Cholewicki J, McGill SM. Mechanical stability of the in vivo lumbar spine: implications for injury and chronic low back pain. Clin Biomech 1996; 11: 1-15.
  • 4. Keshner EA, Woollacott MH: Debu B. Neck, trunk and limb muscle responses during postural pertubations in human. Exp Brain Res 1998; 1: 455–466.
  • 5. Zattara M, Bouisset S. Posturo-kinetic organisation during the early phase of voluntary upper limb movement. 1. Normal subjects. Journal of Neurology, Neurosurgery & Psychiatry 1988; 51(7): 956-965.
  • 6. Choi YC. The effects of trunk muscle strengthening exercise on balance performance of sitting posture and hand function of children with spastic diplegic cerebral palsy (master’s thesis). South Korea: Daegu University; 2010.
  • 7. Pediatric physical therapy. Tecklin JS, (ed). 4th edition: 210–216. Baltimore:Lippincott Williams & Wilkins; 2008.
  • 8. From the normal development cerebral palsy treatment ideas. Hong JR, (ed). 3rd edition: 97–100. Korea: Koonja; 2014.
  • 9. Bergmark A. Stability of the lumbar spine. A study in mechanical engineering. Acta Orthop Scand Suppl 1989; 230: 1–54.
  • 10. Okubo Y, Kaneoka K, Imai A, Shiina I, Tatsumura M, Izumi S et al. Electromyographic analysis of transversus abdominis and lumbar multifidus using wire electrodes during lumbar stabilization exercises. J Orthop Sports Phys Ther 2010; 40: 743–750.
  • 11. Beneck GJ, Story JW, Donald S. Postural cueing to ıncrease lumbar lordosis increases lumbar multifidus activation during trunk stabilization exercises: EMG assessment using intramuscular electrodes. Journal of Orthopaedic & Sports Physical Therapy 2016; 46(4): 293-299.
  • 12. Cools AM, Dewitte V, Lanszweert F, Notebaert D, Roets A, Soetens B, et al. Rehabilitation of scapular muscle balance: which exercises to prescribe? Am J Sports Med 2007b; 35: 1744–51.
  • 13. Crosbie J, Kilbreath SL, Hollmann L, York S. Scapulohumeral rhythm and associated spinal motion. Clin Biomech (Bristol, Avon) 2008; 23(2): 184–92.
  • 14. Willson JD, Ireland ML, Davis I. Core strength and lower extremity alignment during single leg squats. Med Sci Sports Exerc 2006; 38: 945–952.
  • 15. Weltin E, Mornieux G, Gollhofer A. Influence of gender on trunk and lower limb biomechanics during lateral movements. Res Sports Med 2015; 23: 265–277.
  • 16. Hodges PW, Richardson CA. Contraction of the abdominal muscles associated with movement of the lower limb. Phys Ther 1997; 77: 132–142.
  • 17. Gottschall JS, Mills J, Hastings B. Integration core exercises elicit greater muscle activation than isolation exercises. J Strength Cond Res 2013; 27: 590–596.
  • 18. Konin JG, Beil N, Werner G: Facilitating the serape effect to enhance extremity force production. Athlet Ther Today 2003; 8: 54–56. 19. Moreside JM, McGill SM. Hip joint range of motion improvements using three different interventions. J Strength Cond Res 2012; 26: 1265–1273.
  • 20. Bax M, Goldstein M, Rosenbaum P, Leviton A, Paneth N, Dan B, et al. Executive Committee for the Definition of Cerebral Palsy: Proposed definition and classification of cerebral palsy. Dev Med Child Neurol 2005; 47(8): 571–576.
  • 21. Prosser LA, Lee SC, VanSant AF, Barbe MF, Lauer RT. Trunk and hip muscle activation patterns are different during walking in young children with and without cerebral palsy. Physical therapy 2010; 90(7): 986-997.
  • 22. Snijders CJ, BakkerMP, Vleeming A, Stoeckart R, Stam HJ. Oblique abdominal muscle activity in standing and in sitting on hard and soft seats. Clin Biomech 1995; 10: 73–78.
  • 23. Snijders CJ, Ribbers MT, Bakker HVD, Stoeckart R, Stam HJ. EMG recordings of abdominal and back muscles in various standing postures: validation of a biomechanical model on sacroiliac joint stability. J Electromyogr Kinesiol 1998; 8: 205–214.
  • 24. Richardson CA, Snijders CJ, Hides JA, Damen L, Pas MS, Storm J. The relation between the transversus abdominis muscles, sacroiliac joint mechanics, and low back pain. Spine 2002; 27: 399–405.
  • 25. Kaji A, Sasagawa S, Kubo T, Kanehisa H. Transient effect of core stability exercises on postural sway during quiet standing. J Strength Cond Res 2010; 24: 382-388.
  • 26. Behm DG, Anderson K, Curnew RS. Muscle force and activation under stable and unstable conditions. J Strength Cond Res 2002; 16: 416–422. 27. Bly L. Motor skills acquisition in the first year: 113-120. USA: Psychological Corporation; 1994.
  • 28. Hong JR. Effect of program in visual perception on eye-hand coordination in a child with cerebral palsy: a case study. J Korean Soc Occup Ther 2000; 8: 103-110.
  • 29. Ryu HJ, Song GB. Differences in proprioceptive senses between children with diplegic and children with hemiplegic cerebral palsy. J Phys Ther Sci 2016; 28: 658–660.
  • 30. Oh JL. The effects of trunk muscle strength training on sitting balance of children with spastic cerebral palsy. The Journal of Korean Physical Therapy 2003; 15: 255–298.
  • 31. Park KM, Kim SY, Oh DW. Effects of the pelvic compression belt on gluteus medius, quadratus lumborum, and lumbar multifidus activities during side-lying hip abduction. J Electromyogr Kinesiol 2010; 20: 1141–5.
  • 32. Walton JN, Ellis E, Court SD. Clumsy children: developmental apraxia and agnosia. Brain 1962; 85: 603–612.
  • 33. Saavedra S, Woollacott M, van Donkelaar P. Head stability during quiet sitting in children with cerebral palsy: effect of vision and trunk support. Exp Brain Res 2010; 201: 13–23.
  • 34. Shurtleff TL, Engsberg JR. Changes in trunk and head stability in children with cerebral palsy after hippotherapy: a pilot study. Phys Occup Ther Pediatr 2010; 30: 150–163.
  • 35. McCormack DJ. The effects of keyguard use and pelvic positioning on typing speed and accuracy in a boy with cerebral palsy. Am J Occup Ther 1990; 44: 312–315.
  • 36. Jeong GS. Effects of trunk stability on the hand’s dexterity improvement for the children with cerebral palsy (master’s thesis). South Korea: Daegu University; 2006.
  • 37. Shin JW, Song GB. The effects of neck and trunk stabilization exercises on upper limb and visuoperceptual function in children with cerebral palsy. J. Phys. Ther. Sci. 2016; 28: 3232–3235.
  • 38. Jull GA, O’Leary SP, Falla DL. Clinical assessment of the deep cervical flexor muscles: the craniocervical flexion test. J Manipulative Physiol Ther, 2008; 31: 525–533.
  • 39. Kim SE. Effect of the deep neck flexor strength training and bridge exercise on sitting balance of children with spastic cerebral palsy (master’s thesis). South Korea: Daegu University; 2013.
  • 40. Shin JW, Song GB, Ko J. The effects of neck and trunk stabilization exercises on cerebral palsy children’s static and dynamic trunk balance: case series. J. Phys. Ther. Sci. 2017; 29: 771–774.
  • 41. Chung EJ, Han SJ, Lee BH. The Effects of cranio-cervical flexion based trunk stabilization exercise on gross motor function and posture alignment change in children with spastic cerebral palsy (randomized controlled trial). Journal of Korean Physical Therapy Science 2019; 26(2): 61-73.
  • 42. Yeom JN. Effects of longitude trunk sling stabilization exercises and neurodevelopmental treatment on foot plantar pressure for the diplegic children with cerebral palsy during ambulation (master’s thesis). South Korea: Daegu University; 2008.
  • 43. Yeom JN, Lim CG. Static and dynamic foot pressure after trunk stabilization exercises in spastic diplegic cerebral palsy. J Korean Soc Phys Ther 2014: 26(4): 274-279.
  • 44. Ko S, Kim Y, Lee S. The Effects of trunk stabilization exercises using a sling on motor development and balance in ınfant with development disability. Advanced Science and Technology Letters 2016; 132: 161-166.
  • 45. Lee CW, Kim SG, Na SS. The effects of hippotherapy and a horse riding simulator on the balance of children with cerebral palsy. Journal of physical therapy science 2014; 26(3): 423-425.
  • 46. Kwon JY, Chang HJ, Lee JY, Ha Y, Lee PK, Kim YH. Effects of hippotherapy on gait parameters in children with bilateral spastic cerebral palsy. Archives of physical medicine and rehabilitation 2011; 92(5): 774-779.
  • 47. Moraes AG, Ângelo VR, Chiavoloni L, de David AC. Hippotherapy on postural balance in the sitting position of children with cerebral palsy–Longitudinal study. Physiotherapy theory and practice 2020; 36(2).
  • 48. Kim HS, Lee CW, Lee IS. Comparison between the effects of horseback riding exercise and trunk stability exercise on the balance of normal adults. Journal of physical therapy science 2014; 26(9): 1325-1327.
  • 49. Elanchezhıan C, Swarnakumarı P. Swiss ball training to improve trunk control and balance in spastic hemiplegic cerebral palsy. Sri Lanka Journal of Child Health 2019; 48(4): 300-304.
  • 50. Anshar A, Muthia S, Durahim D, Sudaryanto S. Different of influence of trunk control facilitation and ball exercise on the improvement of balance control in palsy cerebral patients. International Journal of Sciences: Basic and Applied Research (IJSBAR) 2018; 37(2): 298-304.

Trunk Stabilization and Its Rehabilitative Effects in Children with Cerebral Palsy

Year 2022, , 123 - 131, 29.04.2022
https://doi.org/10.47493/abantmedj.957341

Abstract

The trunk has a major role in providing dynamic stabilization in postural reactions. It also plays a critical role in supporting upper and lower extremity movements, loading, and protecting the spine. Trunk stabilization is the maintenance of trunk postural control and movement despite the disturbing effects of gravity, internal and external perturbations. Cerebral palsy (CP) is a non-progressive neurodevelopmental disease. Weak trunk control is common among children with CP. Trunk stability is important in rehabilitation because of its contribution to the child’s activity and participation. However, the results of trunk stabilization training in CP rehabilitation are limited, and few studies have emphasized the importance of trunk stabilization in CP. Considering the growing interest in supportive and novel rehabilitation methods in children with CP, this paper aimed to (i) describe the main features of neck and trunk stabilization (ii) summarize the possible therapeutic effects of neck and trunk stabilization methods based on different approaches in patients with CP. As a result, the literature demonstrates that these exercises benefit the rehabilitation process in reducing the negative effects of trunk instability. Increasing trunk stabilization with different techniques can improve the child’s upper-lower extremity skills, visual-perceptual functions and balance abilities.

References

  • 1. Kibler WB, Press J, Sciascia A. The role of core stability in athletic function. Sports Medicine 2006; 36(3): 189-198.
  • 2. Pigeon P, Yahia LH, Mitnitski AB, Feldman AG. Superposition of independent units of coordination during pointing movements involving the trunk with and without visual feedback. Exp Brain Res 2000; 131: 336–49.
  • 3. Cholewicki J, McGill SM. Mechanical stability of the in vivo lumbar spine: implications for injury and chronic low back pain. Clin Biomech 1996; 11: 1-15.
  • 4. Keshner EA, Woollacott MH: Debu B. Neck, trunk and limb muscle responses during postural pertubations in human. Exp Brain Res 1998; 1: 455–466.
  • 5. Zattara M, Bouisset S. Posturo-kinetic organisation during the early phase of voluntary upper limb movement. 1. Normal subjects. Journal of Neurology, Neurosurgery & Psychiatry 1988; 51(7): 956-965.
  • 6. Choi YC. The effects of trunk muscle strengthening exercise on balance performance of sitting posture and hand function of children with spastic diplegic cerebral palsy (master’s thesis). South Korea: Daegu University; 2010.
  • 7. Pediatric physical therapy. Tecklin JS, (ed). 4th edition: 210–216. Baltimore:Lippincott Williams & Wilkins; 2008.
  • 8. From the normal development cerebral palsy treatment ideas. Hong JR, (ed). 3rd edition: 97–100. Korea: Koonja; 2014.
  • 9. Bergmark A. Stability of the lumbar spine. A study in mechanical engineering. Acta Orthop Scand Suppl 1989; 230: 1–54.
  • 10. Okubo Y, Kaneoka K, Imai A, Shiina I, Tatsumura M, Izumi S et al. Electromyographic analysis of transversus abdominis and lumbar multifidus using wire electrodes during lumbar stabilization exercises. J Orthop Sports Phys Ther 2010; 40: 743–750.
  • 11. Beneck GJ, Story JW, Donald S. Postural cueing to ıncrease lumbar lordosis increases lumbar multifidus activation during trunk stabilization exercises: EMG assessment using intramuscular electrodes. Journal of Orthopaedic & Sports Physical Therapy 2016; 46(4): 293-299.
  • 12. Cools AM, Dewitte V, Lanszweert F, Notebaert D, Roets A, Soetens B, et al. Rehabilitation of scapular muscle balance: which exercises to prescribe? Am J Sports Med 2007b; 35: 1744–51.
  • 13. Crosbie J, Kilbreath SL, Hollmann L, York S. Scapulohumeral rhythm and associated spinal motion. Clin Biomech (Bristol, Avon) 2008; 23(2): 184–92.
  • 14. Willson JD, Ireland ML, Davis I. Core strength and lower extremity alignment during single leg squats. Med Sci Sports Exerc 2006; 38: 945–952.
  • 15. Weltin E, Mornieux G, Gollhofer A. Influence of gender on trunk and lower limb biomechanics during lateral movements. Res Sports Med 2015; 23: 265–277.
  • 16. Hodges PW, Richardson CA. Contraction of the abdominal muscles associated with movement of the lower limb. Phys Ther 1997; 77: 132–142.
  • 17. Gottschall JS, Mills J, Hastings B. Integration core exercises elicit greater muscle activation than isolation exercises. J Strength Cond Res 2013; 27: 590–596.
  • 18. Konin JG, Beil N, Werner G: Facilitating the serape effect to enhance extremity force production. Athlet Ther Today 2003; 8: 54–56. 19. Moreside JM, McGill SM. Hip joint range of motion improvements using three different interventions. J Strength Cond Res 2012; 26: 1265–1273.
  • 20. Bax M, Goldstein M, Rosenbaum P, Leviton A, Paneth N, Dan B, et al. Executive Committee for the Definition of Cerebral Palsy: Proposed definition and classification of cerebral palsy. Dev Med Child Neurol 2005; 47(8): 571–576.
  • 21. Prosser LA, Lee SC, VanSant AF, Barbe MF, Lauer RT. Trunk and hip muscle activation patterns are different during walking in young children with and without cerebral palsy. Physical therapy 2010; 90(7): 986-997.
  • 22. Snijders CJ, BakkerMP, Vleeming A, Stoeckart R, Stam HJ. Oblique abdominal muscle activity in standing and in sitting on hard and soft seats. Clin Biomech 1995; 10: 73–78.
  • 23. Snijders CJ, Ribbers MT, Bakker HVD, Stoeckart R, Stam HJ. EMG recordings of abdominal and back muscles in various standing postures: validation of a biomechanical model on sacroiliac joint stability. J Electromyogr Kinesiol 1998; 8: 205–214.
  • 24. Richardson CA, Snijders CJ, Hides JA, Damen L, Pas MS, Storm J. The relation between the transversus abdominis muscles, sacroiliac joint mechanics, and low back pain. Spine 2002; 27: 399–405.
  • 25. Kaji A, Sasagawa S, Kubo T, Kanehisa H. Transient effect of core stability exercises on postural sway during quiet standing. J Strength Cond Res 2010; 24: 382-388.
  • 26. Behm DG, Anderson K, Curnew RS. Muscle force and activation under stable and unstable conditions. J Strength Cond Res 2002; 16: 416–422. 27. Bly L. Motor skills acquisition in the first year: 113-120. USA: Psychological Corporation; 1994.
  • 28. Hong JR. Effect of program in visual perception on eye-hand coordination in a child with cerebral palsy: a case study. J Korean Soc Occup Ther 2000; 8: 103-110.
  • 29. Ryu HJ, Song GB. Differences in proprioceptive senses between children with diplegic and children with hemiplegic cerebral palsy. J Phys Ther Sci 2016; 28: 658–660.
  • 30. Oh JL. The effects of trunk muscle strength training on sitting balance of children with spastic cerebral palsy. The Journal of Korean Physical Therapy 2003; 15: 255–298.
  • 31. Park KM, Kim SY, Oh DW. Effects of the pelvic compression belt on gluteus medius, quadratus lumborum, and lumbar multifidus activities during side-lying hip abduction. J Electromyogr Kinesiol 2010; 20: 1141–5.
  • 32. Walton JN, Ellis E, Court SD. Clumsy children: developmental apraxia and agnosia. Brain 1962; 85: 603–612.
  • 33. Saavedra S, Woollacott M, van Donkelaar P. Head stability during quiet sitting in children with cerebral palsy: effect of vision and trunk support. Exp Brain Res 2010; 201: 13–23.
  • 34. Shurtleff TL, Engsberg JR. Changes in trunk and head stability in children with cerebral palsy after hippotherapy: a pilot study. Phys Occup Ther Pediatr 2010; 30: 150–163.
  • 35. McCormack DJ. The effects of keyguard use and pelvic positioning on typing speed and accuracy in a boy with cerebral palsy. Am J Occup Ther 1990; 44: 312–315.
  • 36. Jeong GS. Effects of trunk stability on the hand’s dexterity improvement for the children with cerebral palsy (master’s thesis). South Korea: Daegu University; 2006.
  • 37. Shin JW, Song GB. The effects of neck and trunk stabilization exercises on upper limb and visuoperceptual function in children with cerebral palsy. J. Phys. Ther. Sci. 2016; 28: 3232–3235.
  • 38. Jull GA, O’Leary SP, Falla DL. Clinical assessment of the deep cervical flexor muscles: the craniocervical flexion test. J Manipulative Physiol Ther, 2008; 31: 525–533.
  • 39. Kim SE. Effect of the deep neck flexor strength training and bridge exercise on sitting balance of children with spastic cerebral palsy (master’s thesis). South Korea: Daegu University; 2013.
  • 40. Shin JW, Song GB, Ko J. The effects of neck and trunk stabilization exercises on cerebral palsy children’s static and dynamic trunk balance: case series. J. Phys. Ther. Sci. 2017; 29: 771–774.
  • 41. Chung EJ, Han SJ, Lee BH. The Effects of cranio-cervical flexion based trunk stabilization exercise on gross motor function and posture alignment change in children with spastic cerebral palsy (randomized controlled trial). Journal of Korean Physical Therapy Science 2019; 26(2): 61-73.
  • 42. Yeom JN. Effects of longitude trunk sling stabilization exercises and neurodevelopmental treatment on foot plantar pressure for the diplegic children with cerebral palsy during ambulation (master’s thesis). South Korea: Daegu University; 2008.
  • 43. Yeom JN, Lim CG. Static and dynamic foot pressure after trunk stabilization exercises in spastic diplegic cerebral palsy. J Korean Soc Phys Ther 2014: 26(4): 274-279.
  • 44. Ko S, Kim Y, Lee S. The Effects of trunk stabilization exercises using a sling on motor development and balance in ınfant with development disability. Advanced Science and Technology Letters 2016; 132: 161-166.
  • 45. Lee CW, Kim SG, Na SS. The effects of hippotherapy and a horse riding simulator on the balance of children with cerebral palsy. Journal of physical therapy science 2014; 26(3): 423-425.
  • 46. Kwon JY, Chang HJ, Lee JY, Ha Y, Lee PK, Kim YH. Effects of hippotherapy on gait parameters in children with bilateral spastic cerebral palsy. Archives of physical medicine and rehabilitation 2011; 92(5): 774-779.
  • 47. Moraes AG, Ângelo VR, Chiavoloni L, de David AC. Hippotherapy on postural balance in the sitting position of children with cerebral palsy–Longitudinal study. Physiotherapy theory and practice 2020; 36(2).
  • 48. Kim HS, Lee CW, Lee IS. Comparison between the effects of horseback riding exercise and trunk stability exercise on the balance of normal adults. Journal of physical therapy science 2014; 26(9): 1325-1327.
  • 49. Elanchezhıan C, Swarnakumarı P. Swiss ball training to improve trunk control and balance in spastic hemiplegic cerebral palsy. Sri Lanka Journal of Child Health 2019; 48(4): 300-304.
  • 50. Anshar A, Muthia S, Durahim D, Sudaryanto S. Different of influence of trunk control facilitation and ball exercise on the improvement of balance control in palsy cerebral patients. International Journal of Sciences: Basic and Applied Research (IJSBAR) 2018; 37(2): 298-304.
There are 48 citations in total.

Details

Primary Language English
Subjects Clinical Sciences
Journal Section Review
Authors

Nasim Ejraeı This is me 0000-0002-7789-1978

Aysel Yildiz Ozer 0000-0003-0739-6143

Publication Date April 29, 2022
Submission Date June 25, 2021
Published in Issue Year 2022

Cite

APA Ejraeı, N., & Yildiz Ozer, A. (2022). Trunk Stabilization and Its Rehabilitative Effects in Children with Cerebral Palsy. Abant Medical Journal, 11(1), 123-131. https://doi.org/10.47493/abantmedj.957341
AMA Ejraeı N, Yildiz Ozer A. Trunk Stabilization and Its Rehabilitative Effects in Children with Cerebral Palsy. Abant Med J. April 2022;11(1):123-131. doi:10.47493/abantmedj.957341
Chicago Ejraeı, Nasim, and Aysel Yildiz Ozer. “Trunk Stabilization and Its Rehabilitative Effects in Children With Cerebral Palsy”. Abant Medical Journal 11, no. 1 (April 2022): 123-31. https://doi.org/10.47493/abantmedj.957341.
EndNote Ejraeı N, Yildiz Ozer A (April 1, 2022) Trunk Stabilization and Its Rehabilitative Effects in Children with Cerebral Palsy. Abant Medical Journal 11 1 123–131.
IEEE N. Ejraeı and A. Yildiz Ozer, “Trunk Stabilization and Its Rehabilitative Effects in Children with Cerebral Palsy”, Abant Med J, vol. 11, no. 1, pp. 123–131, 2022, doi: 10.47493/abantmedj.957341.
ISNAD Ejraeı, Nasim - Yildiz Ozer, Aysel. “Trunk Stabilization and Its Rehabilitative Effects in Children With Cerebral Palsy”. Abant Medical Journal 11/1 (April 2022), 123-131. https://doi.org/10.47493/abantmedj.957341.
JAMA Ejraeı N, Yildiz Ozer A. Trunk Stabilization and Its Rehabilitative Effects in Children with Cerebral Palsy. Abant Med J. 2022;11:123–131.
MLA Ejraeı, Nasim and Aysel Yildiz Ozer. “Trunk Stabilization and Its Rehabilitative Effects in Children With Cerebral Palsy”. Abant Medical Journal, vol. 11, no. 1, 2022, pp. 123-31, doi:10.47493/abantmedj.957341.
Vancouver Ejraeı N, Yildiz Ozer A. Trunk Stabilization and Its Rehabilitative Effects in Children with Cerebral Palsy. Abant Med J. 2022;11(1):123-31.