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Published on: January 12, 2018
Motor Abilities in Adolescents Born Preterm Are Associated With Microstructure of the Corpus Callosum
Samuel Groeschel1, Linda Holmström2, Gemma Northam3
1Department of Child Neurology, Children's Hospital, University of Tübingen, Tübingen, Germany.
Insights
Preterm adolescents without cerebral palsy show poorer motor skills. Altered microstructure in the corpus callosum significantly impacts movement quality in these individuals.
Area of Science:
- Neuroscience
- Developmental Pediatrics
- Biomedical Imaging
Background:
- Preterm birth increases neuromotor impairment risk.
- Major neuromotor impairment (cerebral palsy) rates are decreasing, but subtle motor deficits persist in many preterm individuals.
- These subtle motor deficits can impact daily life functioning.
Purpose of the Study:
- To investigate motor performance in preterm adolescents without cerebral palsy.
- To examine associations between motor performance and structural alterations in motor system pathways.
- To identify specific white matter tracts related to motor deficits in this population.
Main Methods:
- Studied 32 preterm adolescents (born <33 weeks gestation) without cerebral palsy.
- Assessed timed performance and movement quality using the Zürich Neuromotor Assessment.
- Utilized Diffusion Magnetic Resonance Imaging (dMRI) for tractography and fractional anisotropy (FA) measurement of major motor tracts.
Main Results:
- Preterm adolescents exhibited poorer motor performance (timed and quality) compared to norms.
- Strongest correlations between movement quality and FA were found in corpus callosum fibers connecting motor and sensory areas.
- Timed motor performance correlated with FA in cortico-spinal, thalamo-cortical, and corpus callosum fibers.
Conclusions:
- Motor ability impairments are evident in preterm adolescents even without major neuromotor impairment or focal brain injury.
- Altered microstructure of the corpus callosum is a critical factor, particularly affecting movement quality.
- These findings highlight the importance of white matter integrity for motor function in individuals born preterm.
Abstract:
Background: Preterm birth is associated with increased risk of neuromotor impairment. Rates of major neuromotor impairment (cerebral palsy) have decreased; however, in a large proportion of those who do not develop cerebral palsy impaired neuromotor function is observed and this often has implications for everyday life. The aim of this study was to investigate motor performance in preterm born adolescents without cerebral palsy, and to examine associations with alterations of motor system pathway structure. Design/Methods: Thirty-two adolescents (12 males) without cerebral palsy, born before 33 weeks of gestation (mean 27.4 weeks, SD 2.4; birth weight mean 1,084.5 g; SD 387.2), treated at a single tertiary unit, were assessed (median age 16 years; min 14, max 18). Timed performance and quality of movements were assessed with the Zürich Neuromotor Assessment. Neuroimaging included Diffusion Magnetic Resonance Imaging for tractography of the major motor tracts and measurement of fractional anisotropy as a measure of microstructure of the tracts along the major motor pathways. Separate analyses were conducted for areas with predominantly single and predominantly crossing fiber regions. Results: Motor performance in both tasks assessing timed performance and quality of movements, was poorer than expected in the preterm group in relation to norm population. The strongest significant correlations were seen between performance in tasks assessing movement quality and fractional anisotropy in corpus callosum fibers connecting primary motor, primary somatosensory and premotor areas. In addition, timed motor performance was significantly related to fractional anisotropy in the cortico-spinal and thalamo-cortical to premotor area fibers, and the corpus callosum. Conclusions: Impairments in motor abilities are present in preterm born adolescents without major neuromotor impairment and in the absence of focal brain injury. Altered microstructure of the corpus callosum microstructure appears a crucial factor, in particular for movement quality.
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