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Three-Dimensional Calvarial Growth in Spring-Assisted Cranioplasty for Correction of Sagittal Synostosis
Naiara Rodriguez-Florez1,2,3, Alessandro Borghi1,4, Daniel D Yauwan1,5
1Craniofacial Unit, Great Ormond Street Hospital for Children, London, UK.
Insights
Spring-assisted cranioplasty (SAC) effectively treats sagittal synostosis by widening the head, though it doesn't fully normalize cephalic index. This minimally invasive technique allows natural cranial growth without volume constraint.
Area of Science:
- Pediatric Neurosurgery
- Craniofacial Surgery
- Medical Imaging
Background:
- Sagittal synostosis is a common condition in infants requiring treatment.
- Spring-assisted cranioplasty (SAC) is a minimally invasive surgical approach.
- Limited follow-up data exists on cranial growth post-SAC.
Purpose of the Study:
- To evaluate cranial shape development after SAC for sagittal synostosis.
- To analyze changes in head dimensions and volume from spring insertion to removal.
- To compare postoperative cranial morphology with age-matched controls.
Main Methods:
- 3D head scans of 30 infants undergoing SAC and 41 controls.
- Measurements included head length, width, height, circumference, and volume.
- Statistical shape modeling was used to analyze 3D average head models.
Main Results:
- Cephalic index significantly improved from pre-op to spring removal (P<0.001).
- Head width increased to match controls, but overall cephalic index remained below control levels.
- Springs did not impede natural cranial growth or volume changes.
Conclusions:
- SAC is an effective treatment for nonsyndromic sagittal synostosis.
- The technique promotes significant cranial width normalization.
- Postoperative cranial shape demonstrates settling of bony prominences and overall skull modification.
Abstract:
Spring-assisted cranioplasty (SAC) is a minimally invasive technique for treating sagittal synostosis in young infants. Yet, follow-up data on cranial growth in patients who have undergone SAC are lacking. This project aimed to understand how the cranial shape develops during the postoperative period, from spring insertion to removal. 3D head scans of 30 consecutive infants undergoing SAC for sagittal synostosis were acquired using a handheld scanner pre-operatively, immediately postoperatively, at follow-up and at spring removal; 3D scans of 41 age-matched control subjects were also acquired. Measurements of head length, width, height, circumference, and volume were taken for all subjects; cephalic index (CI) was calculated. Statistical shape modeling was used to compute 3D average head models of sagittal patients at the different time points. SAC was performed at a mean age of 5.2 months (range 3.3-8.0) and springs were removed 4.3 months later. CI increased significantly (P < 0.001) from pre-op (69.5% ± 2.8%) to spring removal (74.4% ± 3.9%), mainly due to the widening of head width, which became as wide as for age-matched controls; however, the CI of controls was not reached (82.3% ± 6.8%). The springs did not constrain volume changes and allowed for natural growth. Population mean shapes showed that the bony prominences seen at the sites of spring engagement settle over time, and that springs affect the overall 3D head shape of the skull. In conclusion, results reaffirmed the effectiveness of SAC as a treatment method for nonsyndromic single suture sagittal synostosis.
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