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.

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