Alterations in white matter microstructure are associated with goal-directed upper-limb movement segmentation in
Niklas Lenfeldt1, Anna-Maria Johansson2,3, Erik Domellöf2
1Department of Pharmacology and Clinical Neuroscience, Umeå University, Umeå, Sweden.
Insights
Extremely preterm infants show altered brain white matter and less organized upper limb movements. These white matter changes correlate with movement segmentation, suggesting impaired sensorimotor tract development impacts motor control in these children.
Area of Science:
- Neuroscience
- Developmental Pediatrics
- Medical Imaging
Background:
- Children born preterm (PT), particularly extremely preterm (E-PT), often exhibit white matter microstructure alterations.
- These neurological differences are frequently associated with disturbed motor function, impacting daily activities.
Purpose of the Study:
- To investigate the relationship between white matter microstructure abnormalities and upper-limb movement segmentation in 8-year-old children born preterm.
- To compare motor control and brain structure between preterm and term-born children.
Main Methods:
- Diffusion tensor imaging (DTI) was used to assess white matter integrity in nine brain areas.
- Movement segmentation of the head, shoulder, elbow, and wrist was recorded during a unimanual task.
- Participants included 41 preterm children (subdivided by gestational age) and 41 term-born controls.
Main Results:
- Extremely preterm (E-PT) children showed increased movement segmentation on their preferred side compared to term-born controls.
- E-PT children had reduced fractional anisotropy (FA) in the cerebral peduncle and splenium of the corpus callosum on the non-preferred side.
- Conversely, E-PT children exhibited increased FA in the anterior internal capsule on the preferred side, correlating with movement segmentation.
Conclusions:
- Impaired development of sensorimotor tracts in E-PT children is linked to suboptimal spatiotemporal organization of upper-limb movements.
- White matter alterations in specific tracts (cerebral peduncle, anterior internal capsule) are associated with contralateral motor control deficits.
- Findings highlight the impact of early brain development on long-term motor function in preterm infants.
Abstract:
Altered white matter microstructure is commonly found in children born preterm (PT), especially those born at an extremely low gestational age (GA). These children also commonly show disturbed motor function. This study explores the relation between white matter alterations and upper-limb movement segmentation in 41 children born PT (19 girls), and 41 children born at term (18 girls) at 8 years. The PT group was subdivided into extremely PT (E-PT; GA = 25-27 weeks, N = 10), very PT (V-PT; GA = 28-32 weeks, N = 13), and moderately PT (M-PT; GA = 33-35 weeks, N = 18). Arm/hand preference (preferred/non-preferred) was determined through object interactions and the brain hemispheres were designated accordingly. White matter alterations were assessed using diffusion tensor imaging in nine areas, and movement segmentation of the body-parts head, shoulder, elbow, and wrist were registered during a unimanual goal-directed task. Increased movement segmentation was demonstrated consistently on the preferred side in the E-PT group compared with the term born group. Also compared with the term born peers, the E-PT group demonstrated reduced fractional anisotropy (FA) in the cerebral peduncle (targeting the corticospinal tract) in the hemisphere on the non-preferred side and in the splenium of corpus callosum. In contrast, in the anterior internal capsule on the preferred side, the E-PT group had increased FA. Lower FA in the cerebral peduncle, but higher FA in the anterior internal capsule, was associated with increased movement segmentation across body-parts in a contralateral manner. The results suggest that impaired development of sensorimotor tracts in E-PT children could explain a sub-optimal spatiotemporal organization of upper-limb movements. Hum Brain Mapp 38:5051-5068, 2017. © 2017 Wiley Periodicals, Inc.
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