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Non-Invasive Modulation and Robotic Mapping of Motor Cortex in the Developing Brain
Published on: July 1, 2019
Multimodal MRI of white matter development and selective motor control in preterm infants
Alexander Drobyshevsky1, Vasiliy Yarnykh2, Theresa Sukal Moulton3
1Department of Pediatrics, Endeavor Health, Evanston, IL, USA.
Insights
Early myelination of the corticospinal tract (CST) is linked to the development of selective motor control (SMC) in infants. Quantitative myelin imaging may help detect cerebral palsy (CP) early.
Area of Science:
- Neuroscience
- Developmental Biology
- Medical Imaging
Background:
- Selective motor control (SMC) emerges in infancy and is crucial for typical development (TD).
- SMC in infants with cerebral palsy (CP) predicts future motor abilities, but its neural basis is unclear.
- This study investigates the relationship between corticospinal tract (CST) microstructure and SMC in high-risk preterm infants.
Purpose of the Study:
- To explore the neural substrates of SMC in very preterm infants.
- To investigate the association between CST microstructure and SMC development.
- To assess the potential of myelin imaging as a biomarker for early CP detection.
Main Methods:
- 15 very preterm infants underwent multimodal MRI (MPF mapping, DTI) between 3-21 weeks corrected age.
- Macromolecular proton fraction (MPF) quantified myelin; diffusion tensor imaging (DTI) assessed fractional anisotropy (FA).
- SMC was evaluated, with regions of interest including the posterior limb of the internal capsule (PLIC) and CST.
Main Results:
- In typically developing infants, SMC scores increased with age and correlated with PLIC myelin (MPF) (R²=0.81).
- CST myelination rate (3.58%/week) exceeded that of the corpus callosum (1.11%/week).
- An infant with CP showed reduced left CST myelin (MPF) and lower contralateral SMC, with elevated ipsilesional rubrospinal MPF.
Conclusions:
- Early corticospinal tract (CST) myelination parallels the emergence of selective motor control (SMC).
- Quantitative myelin imaging (MPF) shows promise as a sensitive biomarker for motor system maturation.
- This approach may enable early detection and intervention for infants at risk of cerebral palsy (CP).
Background:
Selective motor control (SMC), the capacity to isolate joint movements, emerges in infancy and is a hallmark of typical development (TD). In infants with cerebral palsy (CP), SMC predicts future motor abilities. Although SMC is thought to reflect increasing cortical influence, its neural substrates remain poorly characterized. This study employed multimodal MRI to investigate the relationship between corticospinal tract (CST) microstructure and SMC in very preterm infants at high risk of CP.
Methods:
15 very preterm infants, born before 32 weeks' gestation with birthweight < 1500 g, underwent one or two MRI exams (total 20) between 3- and 21-week corrected age. Imaging included macromolecular proton fraction (MPF) mapping to quantify myelin, diffusion tensor imaging (DTI) to assess fractional anisotropy (FA), and g-ratio estimation. SMC was evaluated at the time of MRI. Regions of interest included the posterior limb of the internal capsule (PLIC), rubrospinal tract, and corpus callosum.
Results:
Of the 15 infants studied, at the Bayley-4 assessment at 2 years, one was later diagnosed with spastic CP, one infant exhibited early motor delay but walked independently by age 2, and the remaining 13 had typical motor development. In infants with typical development, SMC scores increased with age and correlated with MPF in the PLIC (R2 = 0.81). The rate of MPF increase in the CST outpaced that of the corpus callosum, 3.58% vs. 1.11% per week. In the infant with CP, a left hemisphere injury was associated with reduced MPF in the left CST and lower contralateral SMC, whereas rubrospinal MPF was elevated on the ipsilesional side.
Conclusion:
Early CST myelination parallels the emergence of SMC. Quantitative myelin imaging, particularly MPF, may serve as a sensitive structural biomarker of motor system maturation and emerging motor control, enabling early detection and intervention in CP.
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