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Updated: Jul 24, 2026

Preterm EEG: A Multimodal Neurophysiological Protocol
Published on: February 18, 2012
Adaptive mechanisms of developing brain. The neuroradiologic assessment of the preterm infant
L R Ment1, K C Schneider, M A Ainley
1Department of Pediatrics, Yale University School of Medicine, New Haven, Connecticut, USA. laura.ment@yale.edu
Insights
Cranial sonography is preferred for predicting serious adverse outcomes in premature infants because it misses subtle brain lesions. MR imaging detects all lesions but doesn't always correlate with poor outcomes.
Area of Science:
- Neonatal neurology
- Pediatric neuroimaging
- Developmental neuroscience
Background:
- Cranial sonography is standard for premature infants, identifying major brain lesions like IVH, PVL, and VM.
- While sonography provides valuable data on lesion evolution and outcomes, its ability to predict conditions like cerebral palsy (CP) or low IQ is limited.
- Magnetic Resonance (MR) imaging offers superior image quality and lesion detection compared to ultrasound, prompting interest in its use for evaluating these infants.
Purpose of the Study:
- To compare the effectiveness of cranial sonography and MR imaging in predicting neurodevelopmental outcomes in premature infants.
- To evaluate the correlation between imaging findings and long-term outcomes such as CP and low IQ.
- To determine the optimal imaging modality for counseling parents about potential adverse outcomes.
Main Methods:
- Review of existing studies comparing cranial sonography and MR imaging in premature infants.
- Analysis of prospective assessments of imaging modalities' ability to predict outcomes at three years.
- Examination of studies on late MR imaging scans in preterm infants and their correlation with white matter lesions and outcomes.
Main Results:
- Cranial sonography detects only about 50% of infants who develop CP, highlighting its limitations in predicting outcomes.
- A prospective study found MR imaging did not outperform cranial sonography in predicting 3-year outcomes, as both detected severe lesions, and milder MR findings often had normal outcomes.
- Late MR imaging scans reveal white matter lesions in a high percentage of preterm infants, but these poorly correlate with outcomes.
Conclusions:
- For predicting serious adverse outcomes in premature infants, cranial sonography is favored due to its detection of significant lesions and ability to overlook subtle, potentially recoverable ones.
- MR imaging is superior for detecting all brain lesions, including subtle ones, which may be valuable for research into brain injury mechanisms.
- The brain's resilience, suggested by preterm infants faring well despite MR-identified lesions, warrants further research into adaptive mechanisms.
Abstract:
Since the 1980s, cranial sonography has been routinely performed in premature infants. This has produced a wealth of information about the more dramatic central nervous system lesions of IVH, PVL, and late VM. This information has included timing and evolution of these lesions and their eventual correlation with outcome. For two reasons the advent of MR imaging scanning has produced an interest in using this modality to evaluate these same infants. First, MR imaging gives an obviously superior image, and its ability to detect lesions is far superior to that of ultrasound. Second, the ability of cranial sonography to detect all of the children with CP or low IQ is limited. In our studies of outcome in very low-birth weight infants grade 3 to 4 IVH, PVL, or VM are able to detect only about 50% of the infants who developed CP by 3 years. This condition should be highly correlated with structural brain disease; an imaging modality that was more sensitive to central nervous system lesions should offer an advantage in predicting outcome. In the only prospective assessment of the ability of these two modalities to predict outcome at 3 years, van de Bor and colleagues found MR imaging did not do better than cranial sonography. This was largely because both modalities detected the most severe lesions, and most children with milder lesions on MR imaging had normal outcome. Studies of late (age 1 to teenage years) MR imaging scans in preterm infants show that a high percentage have white matter lesions but these lesions correlate poorly with outcome. If our concern when counseling parents is to alert them when a serious adverse outcome is likely in their child, then cranial sonography is to be favored precisely because it is less able to detect subtle lesions, which the developing brain has the capacity to overcome. On the other hand, if our aim is to detect all lesions, even though these lesions do not predict serious adverse outcomes, then MR imaging is to be favored. Research aimed at discovering etiologies and mechanisms of brain injury in these high-risk infants should use the more sensitive modality MR imaging. Finally, the interesting observation that preterm infants fare as well as they do despite MR imaging-identified lesions might stimulate research studying the adaptive mechanisms of developing brain.
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