Literature DB >> 24135259

Impact of a stance phase microprocessor-controlled knee prosthesis on level walking in lower functioning individuals with a transfemoral amputation.

Valerie J Eberly1, Sara J Mulroy2, JoAnne K Gronley2, Jacquelin Perry2, William J Yule3, Judith M Burnfield4.   

Abstract

BACKGROUND: For individuals with transfemoral amputation, walking with a prosthesis presents challenges to stability and increases the demand on the hip of the prosthetic limb. Increasing age or comorbidities magnify these challenges. Computerized prosthetic knee joints improve stability and efficiency of gait, but are seldom prescribed for less physically capable walkers who may benefit from them.
OBJECTIVE: To compare level walking function while wearing a microprocessor-controlled knee (C-Leg Compact) prosthesis to a traditionally prescribed non-microprocessor-controlled knee prosthesis for Medicare Functional Classification Level K-2 walkers. STUDY
DESIGN: Crossover.
METHODS: Stride characteristics, kinematics, kinetics, and electromyographic activity were recorded in 10 participants while walking with non-microprocessor-controlled knee and Compact prostheses.
RESULTS: Walking with the Compact produced significant increase in velocity, cadence, stride length, single-limb support, and heel-rise timing compared to walking with the non-microprocessor-controlled knee prosthesis. Hip and thigh extension during late stance improved bilaterally. Ankle dorsiflexion, knee extension, and hip flexion moments of the prosthetic limb were significantly improved.
CONCLUSIONS: Improvements in walking function and stability on the prosthetic limb were demonstrated by the K-2 level walkers when using the C-Leg Compact prosthesis. CLINICAL RELEVANCE: Understanding the impact of new prosthetic designs on gait mechanics is essential to improve prescription guidelines for deconditioned or older persons with transfemoral amputation. Prosthetic designs that improve stability for safety and walking function have the potential to improve community participation and quality of life. © The International Society for Prosthetics and Orthotics 2013.

Entities:  

Keywords:  Kinematics; electromyography; kinetics; microprocessor-controlled knee

Mesh:

Year:  2013        PMID: 24135259     DOI: 10.1177/0309364613506912

Source DB:  PubMed          Journal:  Prosthet Orthot Int        ISSN: 0309-3646            Impact factor:   1.895


  6 in total

1.  Design of a Semi-Powered Stance-Control Swing-Assist Transfemoral Prosthesis.

Authors:  J T Lee; H L Bartlett; M Goldfarb
Journal:  IEEE ASME Trans Mechatron       Date:  2019-11-07       Impact factor: 5.303

2.  Current and Emerging Trends in the Management of Fall Risk in People with Lower Limb Amputation.

Authors:  Sheila Clemens; Charissa Doerger; Szu-Ping Lee
Journal:  Curr Geriatr Rep       Date:  2020-07-29

3.  Knee extensor power predicts six-minute walk test performance in people with transfemoral amputations.

Authors:  Lindsay Slater; Suzanne Finucane; Levi J Hargrove
Journal:  PM R       Date:  2021-06-09       Impact factor: 2.218

4.  Enhancement of a prosthetic knee with a microprocessor-controlled gait phase switch reduces falls and improves balance confidence and gait speed in community ambulators with unilateral transfemoral amputation.

Authors:  Sara Agueda Fuenzalida Squella; Andreas Kannenberg; Ângelo Brandão Benetti
Journal:  Prosthet Orthot Int       Date:  2017-07-09       Impact factor: 1.895

5.  Direction of attentional focus in prosthetic training: Current practice and potential for improving motor learning in individuals with lower limb loss.

Authors:  Szu-Ping Lee; Alexander Bonczyk; Maria Katrina Dimapilis; Sarah Partridge; Samantha Ruiz; Lung-Chang Chien; Andrew Sawers
Journal:  PLoS One       Date:  2022-07-07       Impact factor: 3.752

6.  Prosthetic Knee Selection for Individuals with Unilateral Transfemoral Amputation: A Clinical Practice Guideline.

Authors:  Phillip M Stevens; Shane R Wurdeman
Journal:  J Prosthet Orthot       Date:  2018-11-09
  6 in total

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