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1.
Cereb Cortex ; 33(6): 2788-2803, 2023 03 10.
Article in English | MEDLINE | ID: mdl-35750056

ABSTRACT

The period immediately after birth is a critical developmental window, capturing rapid maturation of brain structure and a child's earliest experiences. Large-scale brain systems are present at delivery, but how these brain systems mature during this narrow window (i.e. first weeks of life) marked by heightened neuroplasticity remains uncharted. Using multivariate pattern classification techniques and functional connectivity magnetic resonance imaging, we detected robust differences in brain systems related to age in newborns (n = 262; R2 = 0.51). Development over the first month of life occurred brain-wide, but differed and was more pronounced in brain systems previously characterized as developing early (i.e. sensorimotor networks) than in those characterized as developing late (i.e. association networks). The cingulo-opercular network was the only exception to this organizing principle, illuminating its early role in brain development. This study represents a step towards a normative brain "growth curve" that could be used to identify atypical brain maturation in infancy.


Subject(s)
Brain Mapping , Brain , Child , Humans , Infant, Newborn , Brain Mapping/methods , Magnetic Resonance Imaging/methods , Insular Cortex , Neural Pathways/diagnostic imaging
2.
Neuroimage Clin ; 36: 103260, 2022.
Article in English | MEDLINE | ID: mdl-36451363

ABSTRACT

Preterm-born children have high rates of motor impairments, but mechanisms for early identification remain limited. We hypothesized that neonatal motor system functional connectivity (FC) would relate to motor outcomes at age two years; currently, this relationship is not yet well-described in very preterm (VPT; born <32 weeks' gestation) infants with and without brain injury. We recruited 107 VPT infants - including 55 with brain injury (grade III-IV intraventricular hemorrhage, cystic periventricular leukomalacia, post-hemorrhagic hydrocephalus) - and collected FC data at/near term-equivalent age (35-45 weeks postmenstrual age). Correlation coefficients were used to calculate the FC between bilateral motor and visual cortices and thalami. At two years corrected-age, motor outcomes were assessed with the Bayley Scales of Infant and Toddler Development, 3rd edition. Multiple imputation was used to estimate missing data, and regression models related FC measures to motor outcomes. Within the brain-injured group only, interhemispheric motor cortex FC was positively related to gross motor outcomes. Thalamocortical and visual FC were not related to motor scores. This suggests neonatal alterations in motor system FC may provide prognostic information about impairments in children with brain injury.


Subject(s)
Brain Injuries , Infant, Premature, Diseases , Leukomalacia, Periventricular , Infant, Newborn , Infant , Humans , Child, Preschool , Infant, Premature , Leukomalacia, Periventricular/diagnostic imaging , Brain Injuries/diagnostic imaging , Brain , Gestational Age , Cerebral Hemorrhage
3.
Pediatr Res ; 76(1): 86-92, 2014 Jul.
Article in English | MEDLINE | ID: mdl-24713814

ABSTRACT

BACKGROUND: Moderate-to-severe white matter abnormality (WMA) in the newborn has been shown to produce persistent disruptions in cerebral connectivity but does not universally result in neurodevelopmental disability in very preterm (VPT) children. The aims of this hypothesis-driven study were to apply diffusion imaging to: (i) examine whether bilateral WMA detected in VPT children in the newborn period can predict microstructural organization at the age of 7 y and (ii) compare corticospinal tract and corpus callosum (CC) measures in VPT children at the age of 7 y with neonatal WMA with normal vs. impaired motor functioning. METHODS: Diffusion parameters of the corticospinal tract and CC were compared between VPT 7-y olds with (n = 20) and without (n = 42) bilateral WMA detected in the newborn period. For those with WMA, diffusion parameters were further examined. RESULTS: Microstructural organization of corticospinal tract and CC tracts at the age of 7 y were altered in VPT children with moderate-to-severe WMA detected at term equivalent age as compared with those without injury. Furthermore, diffusion parameters differed in the CC for children with WMA categorized by motor outcome (n = 8). CONCLUSION: WMA on conventional magnetic resonance imaging at term equivalent age is associated with altered microstructural organization of the corticospinal tract and CC at 7 y of age.


Subject(s)
Brain/abnormalities , Brain/pathology , Diffusion Tensor Imaging , Leukoencephalopathies/pathology , Anisotropy , Child , Female , Follow-Up Studies , Humans , Infant, Extremely Premature , Infant, Newborn , Infant, Premature , Leukoencephalopathies/complications , Magnetic Resonance Imaging , Male , Motor Skills
4.
Pediatr Res ; 66(1): 80-4, 2009 Jul.
Article in English | MEDLINE | ID: mdl-19287340

ABSTRACT

Animal models with complex cortical development are useful for improving our understanding of the wide spectrum of neurodevelopmental challenges facing human preterm infants. MRI techniques can define both cerebral injury and alterations in cerebral development with translation between animal models and the human infant. We hypothesized that the immature ferret would display a similar sequence of brain development [both gray (GM) and white matter (WM)] to that of the preterm human infant. We describe postnatal ferret neurodevelopment with conventional and diffusion MRI. The ferret is born lissencephalic with a thin cortical plate and relatively large ventricles. Cortical folding and WM maturation take place during the first month of life. From the mid-second through the third week of postnatal life, the ferret brain undergoes a similar, though less complex, pattern of maturational changes to those observed in the human brain during the second half of gestation. GM anisotropy decreases rapidly in the first 3 wks of life, followed by an upward surge of surface folding and WM anisotropy over the next 2 wks.


Subject(s)
Brain/growth & development , Ferrets/growth & development , Animals , Anisotropy , Magnetic Resonance Imaging/methods
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