Locomotor training through a novel robotic platform for gait rehabilitation in pediatric population: short report

被引:33
|
作者
Bayon, C. [1 ]
Lerma, S. [2 ]
Ramirez, O. [1 ]
Serrano, J. I. [1 ]
Del Castillo, M. D. [1 ]
Raya, R. [1 ]
Belda-Lois, J. M. [3 ]
Martinez, I. [2 ]
Rocon, E. [1 ,4 ]
机构
[1] CSIC, Ctr Automat & Robot, Neural & Cognit Engn Grp, Ctra Campo Real Km 0-2, Madrid 28500, Spain
[2] Hosp Infantil Univ Nino Jesus, Madrid, Spain
[3] Inst Biomecan Valencia, Valencia, Spain
[4] Univ Fed Espirito Santo, Postgrad Program, Vitoria, Brazil
关键词
Cerebral palsy; Rehabilitation robotic; Gait; Posture; Exoskeleton device; Spastic diplegia; Case report; CHILDREN;
D O I
10.1186/s12984-016-0206-x
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Background: Cerebral Palsy (CP) is a disorder of posture and movement due to a defect in the immature brain. The use of robotic devices as alternative treatment to improve the gait function in patients with CP has increased. Nevertheless, current gait trainers are focused on controlling complete joint trajectories, avoiding postural control and the adaptation of the therapy to a specific patient. This paper presents the applicability of a new robotic platform called CPWalker in children with spastic diplegia. Findings: CPWalker consists of a smart walker with body weight and autonomous locomotion support and an exoskeleton for joint motion support. Likewise, CPWalker enables strategies to improve postural control during walking. The integrated robotic platform provides means for testing novel gait rehabilitation therapies in subjects with CP and similar motor disorders. Patient-tailored therapies were programmed in the device for its evaluation in three children with spastic diplegia for 5 weeks. After ten sessions of personalized training with CPWalker, the children improved the mean velocity (51.94 +/- 41. 97 %), cadence (29.19 +/- 33.36 %) and step length (26.49 +/- 19.58 %) in each leg. Post-3D gait assessments provided kinematic outcomes closer to normal values than Pre-3D assessments. Conclusions: The results show the potential of the novel robotic platform to serve as a rehabilitation tool. The autonomous locomotion and impedance control enhanced the children's participation during therapies. Moreover, participants' postural control was substantially improved, which indicates the usefulness of the approach based on promoting the patient's trunk control while the locomotion therapy is executed. Although results are promising, further studies with bigger sample size are required.
引用
收藏
页码:1 / 6
页数:6
相关论文
共 50 条
  • [1] Locomotor training through a novel robotic platform for gait rehabilitation in pediatric population: short report
    C. Bayón
    S. Lerma
    O. Ramírez
    J.I. Serrano
    M.D. Del Castillo
    R. Raya
    J.M. Belda-Lois
    I. Martínez
    E. Rocon
    Journal of NeuroEngineering and Rehabilitation, 13
  • [2] Exploring Multimodal Gait Rehabilitation and Assistance through an Adaptable Robotic Platform
    Otalora, Sophia
    Sierra M, Sergio D.
    Ballen-Moreno, Felipe
    Munera, Marcela
    Cifuentes, Carlos A.
    2023 IEEE INTERNATIONAL CONFERENCE ON ROBOTICS AND AUTOMATION (ICRA 2023), 2023, : 10449 - 10456
  • [3] Pilot Study of a Novel Robotic Platform for Gait Rehabilitation in Children with Cerebral Palsy
    Bayon, C.
    Ramirez, O.
    Velasco, M.
    Serrano, J. I.
    Lerma Lara, S.
    Martinez-Caballero, I.
    Rocon, E.
    2016 6TH IEEE INTERNATIONAL CONFERENCE ON BIOMEDICAL ROBOTICS AND BIOMECHATRONICS (BIOROB), 2016, : 882 - 887
  • [4] The role of robotic gait training and tDCS in Friedrich ataxia rehabilitation A case report
    Portaro, Simona
    Russo, Margherita
    Bramanti, Alessia
    Leo, Antonio
    Billeri, Luana
    Manuli, Alfredo
    La Rosa, Gianluca
    Naro, Antonino
    Calabro, Rocco Salvatore
    MEDICINE, 2019, 98 (08)
  • [5] ALEX III: A Novel Robotic Platform with 12 DOFs for Human Gait Training
    Zanotto, Damiano
    Stegall, Paul
    Agrawal, Sunil K.
    2013 IEEE INTERNATIONAL CONFERENCE ON ROBOTICS AND AUTOMATION (ICRA), 2013, : 3914 - 3919
  • [6] Locomotor and robotic assistive gait training for children with cerebral palsy
    Pool, Dayna
    Valentine, Jane
    Taylor, Nicholas F.
    Bear, Natasha
    Elliott, Catherine
    DEVELOPMENTAL MEDICINE AND CHILD NEUROLOGY, 2021, 63 (03): : 328 - 335
  • [7] Development and evaluation of a novel robotic platform for gait rehabilitation in patients with Cerebral Palsy: CPWalker
    Bayon, C.
    Ramirez, O.
    Serrano, J. I.
    Del Castillo, M. D.
    Perez-Somarriba, A.
    Belda-Lois, J. M.
    Martinez-Caballero, I.
    Lerma-Lara, S.
    Cifuentes, C.
    Frizera, A.
    Rocon, E.
    ROBOTICS AND AUTONOMOUS SYSTEMS, 2017, 91 : 101 - 114
  • [8] CPWalker: Robotic Platform for Gait Rehabilitation in Patients with Cerebral Palsy
    Bayon, C.
    Ramirez, O.
    Del Castillo, M. D.
    Serrano, J. I.
    Raya, R.
    Belda-Lois, J. M.
    Poveda, R.
    Molla, F.
    Martin, T.
    Martinez, I.
    Lara, S. Lerma
    Rocon, E.
    2016 IEEE INTERNATIONAL CONFERENCE ON ROBOTICS AND AUTOMATION (ICRA), 2016, : 3736 - 3741
  • [9] A new robotic platform for gait rehabilitation of bedridden stroke patients
    Monaco, V
    Galardi, G.
    Jung, J. H.
    Bagnato, S.
    Boccagni, C.
    Micera, S.
    2009 IEEE 11TH INTERNATIONAL CONFERENCE ON REHABILITATION ROBOTICS, VOLS 1 AND 2, 2009, : 445 - +
  • [10] Brain stimulation paired with novel locomotor training with a robotic gait orthosis in chronic stroke: A feasibility study
    Danzl, Megan M.
    Chelette, Kenneth C.
    Lee, Kara
    Lykins, Dana
    Sawaki, Lumy
    NEUROREHABILITATION, 2013, 33 (01) : 67 - 76