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Published on: November 20, 2015
Postural complexity influences development in infants born preterm with brain injury: relating perception-action
Stacey C Dusing1, Theresa Izzo2, Leroy R Thacker3
1S.C. Dusing, PT, PhD, Physical Therapy Department, Virginia Commonwealth University, PO Box 980224, 1200 E Broad St, Richmond, VA 23298 (USA). scdusing@vcu.edu.
Insights
Altered postural complexity in infants with periventricular white matter injury is linked to developmental delays. Optimal postural complexity supports infant development, while extremes may hinder it.
Area of Science:
- Neuroscience
- Developmental Pediatrics
- Motor Control
Background:
- Perception-action theory highlights the interplay between movement and sensory feedback.
- Early motor development in infants involves a complex relationship between action and perception.
- Postural complexity serves as a quantifiable measure of this perception-action cycle.
Observation:
- Three preterm infants with periventricular white matter injury were studied longitudinally.
- Changes in postural complexity, head control, reaching, and global development were tracked.
- Individual variations in the timing and type of developmental delays were observed.
Findings:
- Altered postural complexity (both reduced and excessive) was associated with developmental delays in all infants.
- Reduced postural complexity may impede motor learning and cognitive development.
- Increased postural complexity correlated with declining neurological status in one infant.
Implications:
- Postural complexity is a sensitive indicator of perception-action integration in infant motor development.
- Maintaining an optimal level of postural complexity is crucial for supporting motor control and cognitive growth.
- Interventions targeting postural control may be beneficial for preterm infants with white matter injury.
Background And Purpose:
Perception-action theory suggests a cyclical relationship between movement and perceptual information. In this case series, changes in postural complexity were used to quantify an infant's action and perception during the development of early motor behaviors.
Case Description:
Three infants born preterm with periventricular white matter injury were included.
Outcomes:
Longitudinal changes in postural complexity (approximate entropy of the center of pressure), head control, reaching, and global development, measured with the Test of Infant Motor Performance and the Bayley Scales of Infant and Toddler Development, were assessed every 0.5 to 3 months during the first year of life. All 3 infants demonstrated altered postural complexity and developmental delays. However, the timing of the altered postural complexity and the type of delays varied among the infants. For infant 1, reduced postural complexity or limited action while learning to control her head in the midline position may have contributed to her motor delay. However, her ability to adapt her postural complexity eventually may have supported her ability to learn from her environment, as reflected in her relative cognitive strength. For infant 2, limited early postural complexity may have negatively affected his learning through action, resulting in cognitive delay. For infant 3, an increase in postural complexity above typical levels was associated with declining neurological status.
Discussion:
Postural complexity is proposed as a measure of perception and action in the postural control system during the development of early behaviors. An optimal, intermediate level of postural complexity supports the use of a variety of postural control strategies and enhances the perception-action cycle. Either excessive or reduced postural complexity may contribute to developmental delays in infants born preterm with white matter injury.
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