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Published on: September 17, 2019
White Matter Plasticity in Reading-Related Pathways Differs in Children Born Preterm and at Term: A Longitudinal
Lisa Bruckert1, Lauren R Borchers1, Cory K Dodson1
1The Developmental-Behavioral Pediatrics Research Group, Division of Developmental-Behavioral Pediatrics, Department of Pediatrics, School of Medicine, Stanford University, Stanford, CA, United States.
Insights
White matter pathway integrity at age 6 predicts reading skills at age 8 in full-term children, but not in preterm children. Preterm children may use alternative brain pathways for reading development.
Area of Science:
- Neuroscience
- Developmental Psychology
- Pediatrics
Background:
- Children born preterm (PT) face risks for white matter injuries, potentially impacting reading development.
- Preterm children often exhibit lower reading performance compared to full-term (FT) peers.
- The association between white matter microstructure at the start of reading acquisition and later reading outcomes in PT children remains unclear.
Purpose of the Study:
- To investigate if white matter pathway integrity at age 6 predicts reading outcomes at age 8 in PT children.
- To compare these associations with those previously observed in FT children.
- To explore potential differences in reading pathway utilization between PT and FT children.
Main Methods:
- Diffusion MRI was used to assess white matter microstructure (fractional anisotropy - FA) at age 6 in PT (n=34) and FT (n=37) children.
- Tract-based FA was extracted from key white matter pathways, including the arcuate fasciculus (Arc), superior longitudinal fasciculus (SLF), and inferior cerebellar peduncle (ICP).
- Reading skills were assessed at age 8, with analyses controlling for sex, socioeconomic status, and non-verbal IQ.
Main Results:
- No significant differences in tract-FA or reading outcomes were found between PT and FT children at ages 6 and 8, respectively.
- White matter microstructure in the left Arc, right SLF, and left ICP at age 6 predicted reading outcomes at age 8 in FT children.
- This predictive association was not observed in PT children, indicating a divergence in reading pathway development or utilization.
Conclusions:
- Cerebral and cerebellar white matter pathway integrity predicts later reading success in FT children but not in PT children.
- PT children may compensate for early white matter differences by utilizing alternative neural pathways for reading.
- Findings highlight the neural plasticity and adaptive strategies in reading development following early-life adversity and potential white matter injury.
Abstract:
Children born preterm (PT) are at risk for white matter injuries based on complications of prematurity. They learn to read but on average perform below peers born full term (FT). Studies have yet to establish whether properties of white matter pathways at the onset of learning to read are associated with individual variation later in reading development in PT children. Here, we asked whether fractional anisotropy (FA) at age 6 years is associated with reading outcome at age 8 years in PT children in the same pathways as previously demonstrated in a sample of FT children. PT (n = 34, mean gestational age = 29.5 weeks) and FT children (n = 37) completed diffusion MRI and standardized measures of non-verbal IQ, language, and phonological awareness at age 6 years. Reading skills were assessed at age 8 years. Mean tract-FA was extracted from pathways that predicted reading outcome in children born FT: left arcuate fasciculus (Arc), bilateral superior longitudinal fasciculus (SLF), and left inferior cerebellar peduncle (ICP). We explored associations in additional pathways in the PT children: bilateral inferior fronto-occipital fasciculus, inferior longitudinal fasciculus, and uncinate fasciculus. Linear regression models examined whether the prediction of reading outcome at age 8 years based on mean tract-FA at age 6 years was moderated by birth group. Children born PT and FT did not differ significantly in tract-FA at age 6 years or in reading at age 8 years. Sex, socioeconomic status, and non-verbal IQ at age 6 years were associated with reading outcome and were included as covariates in all models. Birth group status significantly moderated associations between reading outcome and mean tract-FA only in the left Arc, right SLF, and left ICP, before and after consideration of pre-literacy skills. Microstructural properties of these cerebral and cerebellar pathways predicted later reading outcome in FT but not in PT children. Children born PT may rely on alternative pathways to achieve fluent reading. These findings have implications for plasticity of neural organization after early white matter injury.
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