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Published on: February 12, 2018
Reliability of 3D upper limb motion analysis in children with obstetric brachial plexus palsy
Judy Mahon1, Ailish Malone1, Damien Kiernan1
1Gait Analysis Laboratory, Central Remedial Clinic, Vernon Ave., Clontarf, Dublin 3, Ireland.
Insights
Three-dimensional upper limb motion analysis (3D-ULMA) shows inconsistent reliability for assessing movement in children with obstetric brachial plexus palsy (OBPP). This study highlights measurement errors, guiding future kinematic research in this population.
Area of Science:
- Biomechanics
- Pediatric Orthopedics
- Rehabilitation Medicine
Background:
- Three-dimensional upper limb motion analysis (3D-ULMA) quantifies joint contributions to movement, enhancing understanding of kinematics.
- Reliability of 3D-ULMA has not been established in children with obstetric brachial plexus palsy (OBPP).
Purpose of the Study:
- To determine the between-session reliability and measurement errors of 3D-ULMA using the acromion method (AM).
- To assess the reliability of kinematic data in children with OBPP during functional tasks.
Main Methods:
- Ten children with OBPP (mean age 10 years) underwent 3D-ULMA on two occasions, separated by an average of 8.6 days.
- Kinematic data were collected using an optoelectronic tracking system, with participants performing modified Mallet scale tasks.
- Intraclass correlation coefficients (ICC) and standard error of measurement (SEM) were calculated for task duration, range, and joint angles at the point of task achievement (PTA).
Main Results:
- Poor reliability was found for spatiotemporal parameters and range of motion.
- Moderate to excellent reliability (ICC: 0.77-0.98) was observed for 19 out of 60 variables at PTA, particularly for glenohumeral and thoracohumeral elevation.
- Scapular protraction/retraction and axial rotation showed consistently poor reliability (ICC: 0-0.72 and 0.00-0.91, respectively).
Conclusions:
- Test-retest reliability of 3D-ULMA using the acromion method is inconsistent for tracking dynamic functional tasks in children with OBPP.
- This study provides the first quantification of measurement error for 3D-ULMA in this pediatric population.
- Findings will aid in the more reliable interpretation of future kinematic studies in children with OBPP.
Abstract:
Kinematics, measured by 3D upper limb motion analysis (3D-ULMA), can potentially increase understanding of movement patterns by quantifying individual joint contributions. Reliability in children with obstetric brachial plexus palsy (OBPP) has not been established.
Objective:
This study aimed to determine between session reliability and measurement errors of 3D-ULMA using the acromion method (AM) in children with OBPP.
Approach:
Ten participants (mean 10 years, range 7-15 years, Narakas classification I-III) completed 3D-ULMA on two occasions, mean interval of 8.6 d (±2.8 d). Kinematic data were captured by a 4-CODA cx1 optoelectronic tracking system. Participants performed three trials of the modified Mallet scale tasks. Local coordinate systems, segment and joint rotations were defined as recommended by the International Society of Biomechanics. The intraclass correlation coefficient (ICC 2,K) and standard error of measurement (SEM) were calculated for task duration, range and joint angle at point of task achievement (PTA).
Main Results:
Results indicated poor reliability for spatiotemporal parameters and range. Moderate to excellent reliability at PTA was observed in 19/60 variables (ICC: 0.77-0.98; SEM: 3.5°-10.4°). The Abduction Task had the highest (ICC: 0.79-0.98; SEM: 3.5°-10.3°) with External Rotation the lowest reliability. Glenohumeral and thoracohumeral elevation had the most consistent reliability. Scapular protraction/retraction had consistently poor reliability (ICC: 0-0.72; SEM: 3.5°-10.2°) with axial rotation also poor (ICC: 0.00-0.91; SEM: 6.3°-32.8°). This study determined inconsistent test-retest reliability of 3D-ULMA, using AM, to track dynamic performance of functional tasks in children with OBPP. It is the first study to outline measurement error in this population. This information permits more reliable interpretation of future studies of kinematic patterns in children with OBPP.
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