Priming Robotic Plantarflexor Resistance With Assistance to Improve Ankle Power During Exoskeleton Gait Training

被引:0
|
作者
Harshe, Karl [1 ]
Tagoe, Emmanuella [1 ]
Bowersock, Collin [1 ]
Lerner, Zachary F. [1 ,2 ]
机构
[1] No Arizona Univ, Mech Engn Dept, Flagstaff, AZ 86011 USA
[2] Univ Arizona, Coll Med Phoenix, Dept Orthoped, Phoenix, AZ 85004 USA
来源
IEEE ROBOTICS AND AUTOMATION LETTERS | 2024年 / 9卷 / 11期
基金
美国国家科学基金会;
关键词
Ankle; Legged locomotion; Immune system; Exoskeletons; Training; Torque; Robots; Real-time systems; Biological control systems; Sensors; Biofeedback; cerebral palsy; exoskeletons; muscular priming; rehabilitation; resistance training; CEREBRAL-PALSY; WALKING; INDIVIDUALS; PERFORMANCE; CHILDREN;
D O I
10.1109/LRA.2024.3477093
中图分类号
TP24 [机器人技术];
学科分类号
080202 ; 1405 ;
摘要
Robotic exoskeletons are increasingly being used for gait rehabilitation in individuals with neuromuscular disorders, such as cerebral palsy (CP). A primary rehabilitation goal for those with CP is to improve ankle push-off power, which is crucial for enhancing gait function. Previous research suggests that interleaving assistance and resistance within the same training session may improve certain aspects of gait, such as joint trajectories and torque profiles. This feasibility study sought to investigate the efficacy of priming the plantar flexor muscles with ankle exoskeleton plantar flexor assistance to facilitate increased ankle push-off power during subsequent resisted gait training bouts in individuals with CP. Specifically, we hypothesized that providing plantar-flexor assistance immediately prior to walking with resistance would increase peak biological ankle power and muscle activity compared to walking with resistance alone. We found that peak biological ankle power increased by 25% (p = 0.021) during assistance-primed resisted walking compared to the baseline resisted walking trail. While ankle angular velocity also increased alongside power, there was no significant difference in plantar flexor muscle activity, suggesting more efficient recruitment. These results contribute to our overarching goal of optimizing robotic exoskeleton interventions, potentially leading to the future design of more effective gait rehabilitation strategies.
引用
收藏
页码:10511 / 10518
页数:8
相关论文
共 50 条
  • [21] Combined robotic-aided gait training and physical therapy improve functional abilities and hip kinematics during gait in children and adolescents with acquired brain injury
    Beretta, Elena
    Romei, Marianna
    Molteni, Erika
    Avantaggiato, Paolo
    Strazzer, Sandra
    BRAIN INJURY, 2015, 29 (7-8) : 955 - 962
  • [22] COMPARATIVE EFFECTIVENESS OF ROBOT-INTERACTIVE GAIT TRAINING WITH AND WITHOUT ANKLE ROBOTIC CONTROL IN PATIENTS WITH BRAIN DAMAGE
    Park, Chanhee
    Hwang, Jongseok
    You, Joshua H.
    JOURNAL OF MECHANICS IN MEDICINE AND BIOLOGY, 2021, 21 (09)
  • [23] Ankle Training With a Robotic Device Improves Hemiparetic Gait After a Stroke
    Forrester, Larry W.
    Roy, Anindo
    Krebs, Hermano Igo
    Macko, Richard F.
    NEUROREHABILITATION AND NEURAL REPAIR, 2011, 25 (04) : 369 - 377
  • [24] Contribution of passive stiffness to ankle plantarflexor moment during gait after stroke
    Lamontagne, A
    Malouin, F
    Richards, CL
    ARCHIVES OF PHYSICAL MEDICINE AND REHABILITATION, 2000, 81 (03): : 351 - 358
  • [25] Psychophysiological Assessment of Children with Cerebral Palsy during Robotic-Assisted Gait Training through Infrared Imaging
    Perpetuini, David
    Russo, Emanuele Francesco
    Cardone, Daniela
    Palmieri, Roberta
    Filippini, Chiara
    Tritto, Michele
    Pellicano, Federica
    De Santis, Grazia Pia
    Pellegrino, Raffaello
    Calabro, Rocco Salvatore
    Filoni, Serena
    Merla, Arcangelo
    INTERNATIONAL JOURNAL OF ENVIRONMENTAL RESEARCH AND PUBLIC HEALTH, 2022, 19 (22)
  • [26] Kinetic Gait Changes after Robotic Exoskeleton Training in Adolescents and Young Adults with Acquired Brain Injury
    Karunakaran, Kiran K.
    Ehrenberg, Naphtaly
    Cheng, JenFu
    Bentley, Katherine
    Nolan, Karen J.
    APPLIED BIONICS AND BIOMECHANICS, 2020, 2020 (2020)
  • [27] ROBOTIC SHOE: AN ANKLE ASSISTIVE DEVICE FOR GAIT PLANTAR FLEXION ASSISTANCE
    Schaller, Marcus
    Sorkhabadi, Seyed Mostafa Rezayat
    Zhang, Wenlong
    PROCEEDINGS OF THE 2020 DESIGN OF MEDICAL DEVICES CONFERENCE (DMD2020), 2020,
  • [28] The Effects of Exoskeleton Assistance at the Ankle on Sensory Integration During Standing Balance
    Canete, Santiago
    Wilson, Elizabeth B.
    Wright, W. Geoffrey
    Jacobs, Daniel A.
    IEEE TRANSACTIONS ON NEURAL SYSTEMS AND REHABILITATION ENGINEERING, 2023, 31 : 4428 - 4438
  • [29] Plantarflexor training affects propulsive force generation during gait in children with spastic hemiplegic cerebral palsy: a pilot study
    Ishihara, Misako
    Higuchi, Yumi
    Yonetsu, Ryo
    Kitajima, Hiromi
    JOURNAL OF PHYSICAL THERAPY SCIENCE, 2015, 27 (05) : 1283 - 1286
  • [30] Functional resistance training during walking: Mode of application differentially affects gait biomechanics and muscle activation patterns
    Washabaugh, Edward P.
    Augenstein, Thomas E.
    Krishnan, Chandramouli
    GAIT & POSTURE, 2020, 75 : 129 - 136