Early structural connectivity within the sensorimotor network: Deviations related to prematurity and association to

Sara Neumane1,2,3, Andrea Gondova1,2, Yann Leprince2

  • 1Inserm, NeuroDiderot, Université Paris Cité, Paris, France.

Frontiers in Neuroscience
|December 12, 2022
PubMed

Insights

Preterm birth impacts sensorimotor white matter development, affecting cortico-cortical connections more than cortico-subcortical ones. These early microstructural changes correlate with later motor and cognitive outcomes in infants.

Area of Science:

  • Neuroscience
  • Developmental Neuroscience
  • Medical Imaging

Background:

  • The sensorimotor (SM) network develops rapidly during the perinatal period, making it susceptible to preterm birth effects.
  • The precise impact of prematurity on developing SM connections and subsequent neurodevelopmental outcomes remains unclear.
  • Understanding these early alterations is crucial for identifying potential markers for neuromotor impairments.

Purpose of the Study:

  • To investigate how prematurity affects the early microstructural maturation of sensorimotor white matter connections at term-equivalent age (TEA).
  • To explore the relationship between these early microstructural alterations and neurodevelopmental outcomes at 18 months corrected age.
  • To identify specific patterns of vulnerability within the sensorimotor network due to prematurity.

Main Methods:

  • Analysis of 118 diffusion MRI datasets from the developing Human Connectome Project (dHCP) database, comparing 59 preterm (PT) infants with 59 full-term (FT) controls.
  • Delineation of white matter (WM) connections between primary SM cortices and subcortical structures using probabilistic tractography.
  • Evaluation of WM microstructure using diffusion tensor imaging (DTI) and neurite orientation dispersion and density imaging (NODDI), calculating a 'maturational distance' for PT infants relative to FT controls.

Main Results:

  • Confirmed microstructural differences in SM tracts between PT and FT infants, with effects intensifying with lower gestational age at birth.
  • Maturational distance analysis revealed differential impacts of prematurity: cortico-cortical connections were more affected than cortico-subcortical ones, S1 projections more than M1/paracentral, and rostral cortico-subcortical tracts involving the lenticular nucleus.
  • Highlighted relationships between NODDI-derived maturational distances of specific tracts and fine motor and cognitive outcomes at 18 months corrected age.

Conclusions:

  • Premature birth significantly impacts the developing sensorimotor network, even in low-risk infants, following a caudo-rostral maturation pattern.
  • Early microstructural alterations in SM tracts are associated with later neurodevelopmental outcomes, particularly subtle neuromotor impairments.
  • These findings support the potential of neuroimaging markers for predicting neurodevelopmental disorders in preterm-born children.

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