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Published on: February 26, 2019
Human white matter myelinates faster in utero than ex utero
Mareike Grotheer1,2, David Bloom3,4, John Kruper3,4
1Department of Psychology, Philipps-Universität Marburg, Marburg 35039, Germany.
Insights
Brain development shows faster myelin growth in utero than after birth. This difference in myelin sheath formation impacts preterm infants, potentially affecting long-term neurological outcomes.
Area of Science:
- Neuroscience
- Developmental Biology
- Medical Imaging
Background:
- Myelin sheath formation is crucial for healthy brain function.
- The impact of birth on myelin growth remains an open question.
Purpose of the Study:
- To investigate how birth affects white matter myelin growth in newborns.
- To compare myelin growth rates in utero versus ex utero.
Main Methods:
- Developed automated software to identify 20 white matter bundles in 300 newborns.
- Utilized T1w/T2w imaging contrast to model myelin growth along bundles.
- Analyzed longitudinal data from 34 preterm infants.
Main Results:
- Myelin-sensitive contrast (T1w/T2w) increased faster along white matter bundles before birth than after.
- Preterm infants showed lower T1w/T2w compared to full-term infants at the same corrected age.
- The delay in myelin growth for preterm infants was explained by their in utero and ex utero development time.
Conclusions:
- White matter myelinates more rapidly in the womb than outside.
- Reduced postnatal myelin growth explains lower myelin content in preterm infants.
- Replicating the in-utero environment for preterm infants may improve developmental outcomes.
Abstract:
The formation of myelin, the fatty sheath that insulates nerve fibers, is critical for healthy brain function. A fundamental open question is what impact being born has on myelin growth. To address this, we evaluated a large (n = 300) cross-sectional sample of newborns from the Developing Human Connectome Project (dHCP). First, we developed software for the automated identification of 20 white matter bundles in individual newborns that is well suited for large samples. Next, we fit linear models that quantify how T1w/T2w (a myelin-sensitive imaging contrast) changes over time at each point along the bundles. We found faster growth of T1w/T2w along the lengths of all bundles before birth than right after birth. Further, in a separate longitudinal sample of preterm infants (N = 34), we found lower T1w/T2w than in full-term peers measured at the same age. By applying the linear models fit on the cross-section sample to the longitudinal sample of preterm infants, we find that their delay in T1w/T2w growth is well explained by the amount of time they spent developing in utero and ex utero. These results suggest that white matter myelinates faster in utero than ex utero. The reduced rate of myelin growth after birth, in turn, explains lower myelin content in individuals born preterm and could account for long-term cognitive, neurological, and developmental consequences of preterm birth. We hypothesize that closely matching the environment of infants born preterm to what they would have experienced in the womb may reduce delays in myelin growth and hence improve developmental outcomes.

