Literature DB >> 29353741

Simulating the effect of muscle weakness and contracture on neuromuscular control of normal gait in children.

Aaron S Fox1, Christopher P Carty2, Luca Modenese3, Lee A Barber4, Glen A Lichtwark5.   

Abstract

Altered neural control of movement and musculoskeletal deficiencies are common in children with spastic cerebral palsy (SCP), with muscle weakness and contracture commonly experienced. Both neural and musculoskeletal deficiencies are likely to contribute to abnormal gait, such as equinus gait (toe-walking), in children with SCP. However, it is not known whether the musculoskeletal deficiencies prevent normal gait or if neural control could be altered to achieve normal gait. This study examined the effect of simulated muscle weakness and contracture of the major plantarflexor/dorsiflexor muscles on the neuromuscular requirements for achieving normal walking gait in children. Initial muscle-driven simulations of walking with normal musculoskeletal properties by typically developing children were undertaken. Additional simulations with altered musculoskeletal properties were then undertaken; with muscle weakness and contracture simulated by reducing the maximum isometric force and tendon slack length, respectively, of selected muscles. Muscle activations and forces required across all simulations were then compared via waveform analysis. Maintenance of normal gait appeared robust to muscle weakness in isolation, with increased activation of weakened muscles the major compensatory strategy. With muscle contracture, reduced activation of the plantarflexors was required across the mid-portion of stance suggesting a greater contribution from passive forces. Increased activation and force during swing was also required from the tibialis anterior to counteract the increased passive forces from the simulated dorsiflexor muscle contracture. Improvements in plantarflexor and dorsiflexor motor function and muscle strength, concomitant with reductions in plantarflexor muscle stiffness may target the deficits associated with SCP that limit normal gait.
Copyright © 2018 Elsevier B.V. All rights reserved.

Entities:  

Keywords:  Biomechanics; Cerebral palsy; Equinus gait; Musculoskeletal modelling; Walking

Mesh:

Year:  2018        PMID: 29353741     DOI: 10.1016/j.gaitpost.2018.01.010

Source DB:  PubMed          Journal:  Gait Posture        ISSN: 0966-6362            Impact factor:   2.840


  4 in total

1.  Number of synergies impacts sensitivity of gait to weakness and contracture.

Authors:  Elijah C Kuska; Naser Mehrabi; Michael H Schwartz; Katherine M Steele
Journal:  J Biomech       Date:  2022-02-18       Impact factor: 2.712

2.  Association between Gait Deviation Index and Physical Function in Children with Bilateral Spastic Cerebral Palsy: A Cross-Sectional Study.

Authors:  Tadashi Ito; Koji Noritake; Hiroshi Sugiura; Yasunari Kamiya; Hidehito Tomita; Yuji Ito; Hideshi Sugiura; Nobuhiko Ochi; Yuji Yoshihashi
Journal:  J Clin Med       Date:  2019-12-20       Impact factor: 4.241

3.  Interactions Between Different Age-Related Factors Affecting Balance Control in Walking.

Authors:  Hendrik Reimann; Rachid Ramadan; Tyler Fettrow; Jocelyn F Hafer; Hartmut Geyer; John J Jeka
Journal:  Front Sports Act Living       Date:  2020-07-31

4.  COpenhagen Neuroplastic TRaining Against Contractures in Toddlers (CONTRACT): protocol of an open-label randomised clinical trial with blinded assessment for prevention of contractures in infants with high risk of cerebral palsy.

Authors:  Maria Willerslev-Olsen; Jakob Lorentzen; Katrine Røhder; Anina Ritterband-Rosenbaum; Mikkel Justiniano; Andrea Guzzetta; Ane Vibeke Lando; Anne-Mette Bæk Jensen; Gorm Greisen; Sofie Ejlersen; Line Zacho Pedersen; Britta Andersen; Patricia Lipthay Behrend; Jens Bo Nielsen
Journal:  BMJ Open       Date:  2021-07-06       Impact factor: 2.692

  4 in total

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