Cerebral Palsy Clinical Trial
Official title:
The Effect of Mechanical Vibration on Spasticity and Balance in Children With Cerebral Palsy
Verified date | February 2023 |
Source | University of Thessaly |
Contact | n/a |
Is FDA regulated | No |
Health authority | |
Study type | Interventional |
The purpose of this study was to assess the effect of mechanical vibration on spasticity and balance in children with cerebral palsy. The participants of the clinical study are 13 children with CP and age 4-17 years, with a diagnosis of spastic hemiplegic cerebral palsy. More specifically, the participants were randomly divided into a control group and an intervention group, with the first group continuing conventional physical therapy, while the experimental group outside the physical therapy program did also receive mechanical vibration using a hybervibe G10 vibration platform (lasting 15 minutes). The intervention lasted 8 weeks and participants were assessed before the start of the intervention (T1), 1 month after the first assessment (T2) and rechecked 1 month (T3) after the completion of the program using valid and reliable tools.
Status | Completed |
Enrollment | 13 |
Est. completion date | January 30, 2023 |
Est. primary completion date | December 30, 2022 |
Accepts healthy volunteers | No |
Gender | All |
Age group | 4 Years to 17 Years |
Eligibility | Inclusion Criteria: - The children from 4 - 17 years old - diagnosis of spastic hemiplegic cerebral palsy - ability to understand simple commands. - up to level GMFCS III, - able to stand and walk (with or without mobility aids). Exclusion Criteria: - children who have been injected with botulinum toxin up to 3 months before - children who have undergone selective rhizotomy surgery up to 1 year before, - uncontrolled epilepsy, - other pathologies that will affect the outcome of the intervention. |
Country | Name | City | State |
---|---|---|---|
Greece | University of Thessaly | Lamía |
Lead Sponsor | Collaborator |
---|---|
University of Thessaly | Georgios Paras, Konstantinos Chandolias, Thomas Besios |
Greece,
1. Ahlborg, L., Andersson, C., & Julin, P. (2006). Whole-body vibration training compared with resistance training: Effect on spasticity, muscle strength and motor performance in adults with cerebral palsy. Journal of Rehabilitation Medicine, 38(5). https://doi.org/10.1080/16501970600680262 2. Ahmadizadeh, Z., Khalili, M. A., Ghalam, M. S., & Mokhlesin, M. (2019). Effect of whole body vibration with stretching exercise on active and passive range of motion in lower extremities in children with cerebral palsy: A randomized clinical trial. Iranian Journal of Pediatrics, 29(5). https://doi.org/10.5812/ijp.84436 3. Alashram, A. R., Padua, E., & Annino, G. (2019). Effects of Whole-Body Vibration on Motor Impairments in Patients With Neurological Disorders. In American Journal of Physical Medicine and Rehabilitation (Vol. 98, Issue 12). https://doi.org/10.1097/PHM.0000000000001252 4. Ali, M. S., Awad, A. S., & Elassal, M. I. (2019). The effect of two therapeutic interventions on balance in children with spastic cerebral palsy: A comparative study. Journal of Taibah University Medical Sciences, 14(4). https://doi.org/10.1016/j.jtumed.2019.05.005 5. Andrew Harb and Stephen Kishner. (2022). Modified Ashworth Scale. StatPearls. 6. Bax, M., Goldstein, M., Rosenbaum, P., Leviton, A., Paneth, N., & Dan, B. et al. (2005). Proposed definition and classification of cerebral palsy, April 2005. Developmental Medicine & Child Neurology, 47(8), 571-576. doi: 10.1017/s001216220500112x 7. Cans, C., Dolk, H., Platt, M. J., Colver, A., Prasauskiene, A., & Krägel-Oh-Mann, I. (2007). Recommendations from the SCPE collaborative group for defining and classifying cerebral palsy. Developmental Medicine and Child Neurology, 49(SUPPL. 2). https://doi.org/10.1111/j.1469-8749.2007.tb12626.x 8. Cheng, H. Y. K., Ju, Y. Y., Chen, C. L., Chuang, L. L., & Cheng, C. H. (2015). Effects of whole body vibration on spasticity and lower extremity function in children with cerebral palsy. Human Movement Science, 39. https://doi.org/10.1016/j.humov.2014.11.003 9. Christopher, A., Kraft, E., Olenick, H., Kiesling, R., & Doty, A. (2021). The reliability and validity of the Timed Up and Go as a clinical tool in individuals with and without disabilities across a lifespan: a systematic review: Psychometric properties of the Timed Up and Go. In Disability and Rehabilitation (Vol. 43, Issue 13). https://doi.org/10.1080/09638288.2019.1682066 10. El-Shamy, S. M. (2014). Effect of whole-body vibration on muscle strength and balance in diplegic cerebral palsy: A randomized controlled trial. American Journal of Physical Medicine and Rehabilitation, 93(2). https://doi.org/10.1097/PHM.0b013e3182a541a4 11. Franjoine, M., Darr, N., Held, S., Kott, K., & Young, B. (2010). The Performance of Children Developing Typically on the Pediatric Balance Scale. Pediatric Physical Therapy, 22(4), 350-359. https://doi.org/10.1097/pep.0b013e3181f9d5eb 12. Fratini, A., Bonci, T., & Bull, A. M. J. (2016). Whole body vibration treatments in postmenopausal women can improve bone mineral density: Results of a stimulus focussed meta-analysis. PLoS ONE, 11(12). https://doi.org/10.1371/journal.pone.0166774
Type | Measure | Description | Time frame | Safety issue |
---|---|---|---|---|
Primary | TUG | TIMED UP AND GO (Scale to asses speed) (the minimum time the better) | 2 months | |
Primary | PBS | PAEDIATRIC BALANCE SCALE (BERG BALANNCE SCALE MODIFIED) (Scale for assess the balance) (score 0-56) | 2 months | |
Primary | MAS | Modified Asworth scale (spasticity) | 2 months |
Status | Clinical Trial | Phase | |
---|---|---|---|
Recruiting |
NCT05317234 -
Genetic Predisposition in Cerebral Palsy
|
N/A | |
Recruiting |
NCT05576948 -
Natural History of Cerebral Palsy Prospective Study
|
||
Completed |
NCT04119063 -
Evaluating Wearable Robotic Assistance on Gait
|
Early Phase 1 | |
Completed |
NCT03264339 -
The Small Step Program - Early Intervention for Children With High Risk of Developing Cerebral Palsy
|
N/A | |
Completed |
NCT05551364 -
Usability and Effectiveness of the ATLAS2030 Exoskeleton in Children With Cerebral Palsy
|
N/A | |
Completed |
NCT03902886 -
Independent Walking Onset of Children With Cerebral Palsy
|
||
Recruiting |
NCT05571033 -
Operant Conditioning of the Soleus Stretch Reflex in Adults With Cerebral Palsy
|
N/A | |
Not yet recruiting |
NCT04081675 -
Compliance in Children With Cerebral Palsy Supplied With AFOs
|
||
Completed |
NCT02167022 -
Intense Physiotherapies to Improve Function in Young Children With Cerebral Palsy
|
N/A | |
Completed |
NCT04012125 -
The Effect of Flexible Thoracolumbar Brace on Scoliosis in Cerebral Palsy
|
N/A | |
Enrolling by invitation |
NCT05619211 -
Piloting Movement-to-Music With Arm-based Sprint-Intensity Interval Training Among Children With Physical Disabilities
|
Phase 1 | |
Completed |
NCT04489498 -
Comparison of Somatometric Characteristics Between Cerebral Palsy and Normal Children, Cross-sectional, Multi Center Study
|
||
Completed |
NCT03677193 -
Biofeedback-enhanced Interactive Computer-play for Youth With Cerebral Palsy
|
N/A | |
Recruiting |
NCT06450158 -
Robot-assisted Training in Children With CP
|
N/A | |
Completed |
NCT04093180 -
Intensive Neurorehabilitation for Cerebral Palsy
|
N/A | |
Completed |
NCT02909127 -
The Pediatric Eating Assessment Tool
|
||
Not yet recruiting |
NCT06377982 -
Human Umbilical Cord Blood Infusion in Patients With Cerebral Palsy
|
Phase 1 | |
Not yet recruiting |
NCT06007885 -
Examining Capacity Building of Youth With Physical Disabilities to Pursue Participation Following the PREP Intervention.
|
N/A | |
Not yet recruiting |
NCT03183427 -
Corpus Callosum Size in Patients With Pineal Cyst
|
N/A | |
Active, not recruiting |
NCT03078621 -
Bone Marrow-Derived Stem Cell Transplantation for the Treatment of Cerebral Palsy
|
Phase 1/Phase 2 |