Structural brain differences in school-age children with and without single-suture craniosynostosis
Insights
Single-suture craniosynostosis (SSC) involves premature cranial fusion. This study found no overall brain size differences in children with SSC post-surgery, but did note enlarged ventricles and reduced corpus callosum and cerebellum areas, particularly in metopic cases.
Area of Science:
- Neuroscience
- Developmental Biology
- Pediatric Neurosurgery
Background:
- Single-suture craniosynostosis (SSC) is the premature fusion of a cranial suture, leading to craniofacial dysmorphology.
- Growing evidence links SSC to developmental delays and neurocognitive deficits, but the underlying neuroanatomical associations remain unclear.
Purpose of the Study:
- To investigate brain differences in children with sagittal or metopic SSC years after surgical correction.
- To determine if brain differences vary based on the affected cranial suture.
Main Methods:
- Quantitative MRI analysis comparing brain structure in 36 children with SSC (sagittal or metopic) and 27 age-matched controls.
- Measurements included whole brain, cerebral cortex, white matter, lobar volumes, ventricular volume, corpus callosum area, and cerebellar vermis area.
Main Results:
- No significant differences in whole brain or cerebral lobe volumes were found between SSC patients and controls.
- Ventricle volume was significantly increased in SSC patients (p=0.001), especially with sagittal SSC (p<0.001).
- Corpus callosum area was reduced in metopic SSC (p=0.04), particularly posterior segments (p=0.004). Cerebellar vermis lobules VI-VII were reduced in SSC (p=0.03), most in metopic cases (p=0.01).
Conclusions:
- The risk of neurodevelopmental deficits in SSC is unlikely due to cerebral cortex size differences.
- Localized structural brain differences, including ventricles, corpus callosum, and cerebellum, are present in children with SSC.
- Further research is needed to confirm if these structural variations correlate with developmental and neurocognitive outcomes in SSC patients.
Abstract:
OBJECTIVE Single-suture craniosynostosis (SSC), the premature fusion of a cranial suture, is characterized by dysmorphology of the craniofacial skeleton. Evidence to suggest that children with SSC are at an elevated risk of mild to moderate developmental delays and neurocognitive deficits is mounting, but the associations among premature suture fusion, neuroanatomy, and neurocognition are unexplained. The goals of this study were to determine 1) whether differences in the brain are present in young children with the 2 most common forms of SSC (sagittal and metopic) several years following surgical correction, and 2) whether the pattern of differences varies by affected suture (sagittal or metopic). Examination of differences in the brains of children with SSC several years after surgery may illuminate the growth trajectory of the brain after the potential constraint of the dysmorphic cranium has been relieved. METHODS The authors compared quantitative measures of the brain acquired from MR images obtained from children with sagittal or metopic craniosynostosis (n = 36) at 7 years of age to those obtained from a group of unaffected controls (n = 27) at the same age. The authors measured the volumes of the whole brain, cerebral cortex, cerebral white matter, cerebral cortex by lobe, and ventricles. Additionally, they measured the midsagittal area of the corpus callosum and its segments and of the cerebellar vermis and its component lobules. Measurements obtained from children with SSC and controls were compared using linear regression models. RESULTS No volume measures of the cerebrum or of the whole brain differed significantly between patients with SSC and controls (p > 0.05). However, ventricle volume was significantly increased in patients with SSC (p = 0.001), particularly in those with sagittal craniosynostosis (p < 0.001). In contrast, the area of the corpus callosum was significantly reduced in patients with metopic synostosis (p = 0.04), particularly in the posterior segments (p = 0.004). Similarly, the area of lobules VI-VII of the cerebellar vermis was reduced in patients with SSC (p = 0.03), with those with metopic craniosynostosis showing the greatest reduction (p = 0.01). CONCLUSIONS The lack of differences in overall brain size or regional differences in the size of the lobes of the cerebrum in children with metopic and sagittal synostosis suggests that the elevated risk of neurodevelopmental deficits is not likely to be associated with differences in the cerebral cortex. Instead, this study showed localized differences between sagittal and metopic craniosynostosis cases as compared with controls in the ventricles and in the midsagittal structures of the corpus callosum and the cerebellum. It remains to be tested whether these structural differences are associated with the increased risk for developmental delay and neurocognitive deficits in children with SSC.
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