Mechanisms contributing to gait speed and metabolic cost in children with unilateral cerebral palsy

Tatiana Pessoa Silva Pinto, Sérgio Teixeira Fonseca, Rejane Vale Gonçalves, Thales Rezende Souza, Daniela Virgínia Vaz, Paula Lanna Pereira Silva, Marisa Cotta Mancini, Tatiana Pessoa Silva Pinto, Sérgio Teixeira Fonseca, Rejane Vale Gonçalves, Thales Rezende Souza, Daniela Virgínia Vaz, Paula Lanna Pereira Silva, Marisa Cotta Mancini

Abstract

Background: Gait speed and metabolic cost are indicators of functional capacity in children with cerebral palsy. Uncovering their mechanisms helps guide therapeutic actions.

Objectives: To investigate the contributions of energy-generating and energy-conserving mechanisms to gait speed and metabolic cost of children with unilateral cerebral palsy.

Methods: Data on eccentric and concentric muscle work, co-contraction, elastic torque and vertical stiffness of the affected-limb, forcing torque of the non-affected limb, gait speed and metabolic cost were collected from 14 children with unilateral cerebral palsy, aged 6-12 years. Analyses included two groups of multiple regression models. The first group of models tested the association between each dependent variable (i.e., speed and metabolic cost) and the independent variables that met the input criteria. The second group verified the contribution of the non-selected biomechanical variables on the predictors of the first model.

Results: Gait speed (R2=0.80) was predicted by elastic torque (β=0.62; 95%CI: 0.60, 0.63), vertical stiffness (β=-0.477; 95%CI: -0.479, -0.474) and knee co-contraction (β=0.27; 95%CI: -1.96, 2.49). The production of eccentric work by the affected limb proved relevant in adjusting the vertical stiffness (R2=0.42; β=-0.64; 95%CI: 0.86, -0.42); elastic torque of the affected-leg was associated with impulsive torque of the non-affected leg (R2=0.31; β=0.55; 95%CI: 0.46, 0.64). Metabolic cost of gait (R2=0.48) was partially predicted by knee co-contraction (β=0.69; 95%CI: 0.685, 0.694).

Conclusions: The chain of associations revealed by the two steps models helped uncover the mechanisms involved in the locomotion of children with unilateral cerebral palsy. Intervention that changes specific energy conserving and generating mechanisms may improve gait of these children.

Keywords: Cerebral palsy; Energy conserving mechanisms; Energy generating mechanisms; Gait; Mobility; Motor control.

Copyright © 2017 Associação Brasileira de Pesquisa e Pós-Graduação em Fisioterapia. Publicado por Elsevier Editora Ltda. All rights reserved.

Figures

Figure 1
Figure 1
Regression models illustrate the contribution (or lack of contribution) from energy generation and conservation variables. (A) Primary predictive model of gait speed; secondary models (elastic torque and vertical stiffness). (B) Primary predictive model of gait metabolic cost.

References

    1. Furtado S.R., Sampaio R.F., Kirkwood R.N., Vaz D.V., Mancini M.C. Moderating effect of the environment in the relationship between mobility and school participation in children and adolescents with cerebral palsy. Braz J Phys Ther. 2015;19(4):311–319.
    1. Abel M.F., Damiano D.L. Strategies for increasing walking speed in diplegic cerebral palsy. J Pediatr Orthop. 1996;16(6):753–758.
    1. Kerr C., Parkes J., Stevenson M., Cosgrove A.P., Mcdowell B.C. Energy efficiency in gait, activity, participation, and health status in children with cerebral palsy. Dev Med Child Neurol. 2008;50(3):204–210.
    1. Kamp F.A., Lennon N., Holmes L., Dallmeijer A.J., Henley J., Miller F. Energy cost of walking in children with spastic cerebral palsy: relationship with age, body composition and mobility capacity. Gait Posture. 2014;40(1):209–214.
    1. Piccinini L., Cimolin V., Galli M., Berti M., Crivellini M., Turconi A.C. Quantification of energy expenditure during gait in children affected by cerebral palsy. Eura Medicophys. 2007;43(1):7–12.
    1. Bell K., Davies P. Energy expenditure and physical activity of ambulatory children with cerebral palsy and of typically developing children. Am J Clin Nutr. 2010;92:313–319.
    1. Unnithan V.B., Dowling J.J., Frost G., Bar-Or O. Role of mechanical power estimates in the O2 cost of walking in children with cerebral palsy. Med Sci Sports Exerc. 1999;31(12):1703–1708.
    1. Fernhall B., Unnithan V.B. Physical activity, metabolic issues, and assessment. Phys Med Rehabil Clin N Am. 2002;13(4):925–947.
    1. Sutherland D. The development of mature gait. Gait Posture. 1997;6(2):163–170.
    1. Holt K.G., Wagenaar R.O., Saltzman E. A Dynamic Systems’ constraints approach to rehabilitation. Rev Bras Fisioter. 2010;14(6):446–463.
    1. Downing A.L., Ganley K.J., Fay D.R., Abbas J.J. Temporal characteristics of lower extremity moment generation in children with cerebral palsy. Muscle Nerve. 2009;39(6):800–809.
    1. Damiano D.L., Martellotta T.L., Sullivan D.J., Granata K.P., Abel M.F. Muscle force production and functional performance in spastic cerebral palsy: relationship of cocontraction. Arch Phys Med Rehabil. 2000;81(7):895–900.
    1. Fonseca S.T., Holt K.G., Saltzman E., Fetters L. A dynamical model of locomotion in spastic hemiplegic cerebral palsy: influence of walking speed. Clin Biomech. 2001;16(9):793–805.
    1. Unnithan V.B., Dowling J.J., Frost G., Bar-Or O. Role of cocontraction in the O2 cost of walking in children with cerebral palsy. Med Sci Sports Exerc. 1996;28(12):1498–1504.
    1. Van den Hecke A., Malghem C., Renders A., Detrembleur C., Palumbo S., Lejeune T.M. Mechanical work, energetic cost, and gait efficiency in children with cerebral palsy. J Pediatr Orthop. 2007;27(6):643–647.
    1. Gross R., Leboeuf F., Hardouin J.B., Lempereur M., Perrouin-Verbe B., Remy-Neris O. The influence of gait speed on co-activation in unilateral spastic cerebral palsy children. Clin Biomech. 2013;28(3):312–317.
    1. Sison-Williamson M., Bagley A., Gorton G., Johnson B.A., Oeffinger D. Analysis of the relationships that body composition and muscular strength have with oxygen cost of walking in children with cerebral palsy. Gait Posture. 2014;40(4):628–632.
    1. Crosbie J., Alhusaini A.A., Dean C.M., Shepherd R.B. Plantarflexor muscle and spatiotemporal gait characteristics of children with hemiplegic cerebral palsy: an observational study. Dev Neurorehabil. 2012;15(2):114–118.
    1. Eek M.N., Beckung E. Walking ability is related to muscle strength in children with cerebral palsy. Gait Posture. 2008;28(3):366–371.
    1. Holt K.G., Obusek J.P., Fonseca S.T. Constraints on disordered locomotion. A dynamical systems perspective on spastic cerebral palsy. Hum Mov Sci. 1996;15:177–202.
    1. Fonseca S.T., Holt K.G., Fetters L., Saltzman E. Dynamic resources used in ambulation by children with spastic hemiplegic cerebral palsy: relationship to kinematics, energetics, and asymmetries. Phys Ther. 2004;84(4):344–354.
    1. Riad J., Haglund-Akerlind Y., Miller F. Power generation in children with spastic hemiplegic cerebral palsy. Gait Posture. 2008;27(4):641–647.
    1. Silva P.L., Fonseca S.T., Ocarino J.M., Gonçalves G.P., Mancini M.C. Contributions of cocontraction and eccentric activity to stiffness regulation. J Mot Behav. 2009;41(3):207–218.
    1. Ghoussayni S., Stevens C., Durham S., Ewins D. Assessment and validation of a simple automated method for the detection of gait events and intervals. Gait Posture. 2004;20(3):266–272.
    1. Chagas P.S.C., Mancini M.C., Fonseca S.T., Soares T.B.C., Gomes V.P.D., Sampaio R.F. Neuromuscular mechanisms and anthropometric modifications in the initial stages of independent gait. Gait Posture. 2006;24(3):375–381.
    1. Plasschaert F., Jones K., Forward M. Energy cost of walking: solving the paradox of steady state in the presence of variable walking speed. Gait Posture. 2009;29(2):311–316.
    1. Kugler P.N., Turvey M.T. Erlbaum Associates; 1987. Information, natural law, and the self-assembly of rhythmic movement. Resources for ecological psychology. 481 p.
    1. Moreau N.G., Bodkin A.W., Bjornson K., Hobbs A., Soileau M., Lahasky K. Effectiveness of rehabilitation interventions to improve gait speed in children with cerebral palsy: systematic review and meta-analysis. Phys Ther. 2016;96(12):1938–1954.
    1. Butler R.J., Crowell H.P., Davis I.M. Lower extremity stiffness: implications for performance and injury. Clin Biomech. 2003;18(6):511–517.
    1. Waters R.L., Mulroy S. The energy expenditure of normal and pathological gait. Gait Posture. 1999;9:207–231.
    1. Salem Y., Godwin E.M. Effects of task-oriented training on mobility function in children with cerebral palsy. NeuroRehabilitation. 2009;24(4):307–313.

Source: PubMed

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