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Published on: September 8, 2023
Geometric growth of the normal human craniocervical junction from 0 to 18 years old
Juliette Raoul-Duval1, Angèle Ganet1, Sandro Benichi2,3
1Craniofacial Growth and Form, Hôpital Necker - Enfants Malades, Assistance Publique - Hôpitaux de Paris, Paris, France.
Insights
This study models normal skull base growth in children, revealing distinct developmental patterns for craniocervical junction (CCJ) bones. Findings aid in understanding CCJ abnormalities and designing better treatment plans.
Area of Science:
- Pediatric Orthopedics
- Craniofacial Development
- Biomechanical Engineering
Background:
- The craniocervical junction (CCJ) connects the skull and spine, crucial for head mobility and protecting the brainstem and spinal cord.
- Children are susceptible to various CCJ diseases, including bone disorders and acquired conditions like torticollis and luxation.
- Understanding craniofacial and CCJ growth relationships is vital for effective treatment planning.
Purpose of the Study:
- To develop a geometric model of normal skull base growth in children.
- To analyze specific developmental patterns of CCJ bones and their growth dynamics.
- To investigate the relationship between skull and neck structure development.
Main Methods:
- Compilation of geometric models from control children to represent normal skull base growth.
- Focused analysis on developmental patterns and growth trajectories of individual CCJ bones.
- Examination of synchondroses and suture closure patterns in the occipital bone.
- Integration analysis of skull and neck structures, including bone covariation patterns between C1 and C2 vertebrae.
Main Results:
- Identified specific growth patterns for each CCJ bone, with rapid infancy growth followed by slower maturation.
- Detailed distinct closure trajectories for anterior intra-occipital synchondroses and the occipitomastoid suture.
- Showcased age-related changes in width and closure percentages, particularly within the first two years of life.
- Revealed coordinated growth between skull and neck structures, with synchronized morphological changes between C1 and C2.
Conclusions:
- The study provides initial data for creating inclusive geometric models of the CCJ.
- These models can aid in predicting normal and abnormal growth dynamics in pediatric populations.
- Findings contribute to a better understanding of craniofacial and CCJ development for improved clinical interventions.
Abstract:
The craniocervical junction (CCJ) forms the bridge between the skull and the spine, a highly mobile group of joints that allows the mobility of the head in every direction. The CCJ plays a major role in protecting the inferior brainstem (bulb) and spinal cord, therefore also requiring some stability. Children are subjected to multiple constitutive or acquired diseases involving the CCJ: primary bone diseases such as in FGFR-related craniosynostoses or acquired conditions such as congenital torticollis, cervical spine luxation, and neurological disorders. To design efficient treatment plans, it is crucial to understand the relationship between abnormalities of the craniofacial region and abnormalities of the CCJ. This can be approached by the study of control and abnormal growth patterns. Here we report a model of normal skull base growth by compiling a collection of geometric models in control children. Focused analyses highlighted specific developmental patterns for each CCJ bone, emphasizing rapid growth during infancy, followed by varying rates of growth and maturation during childhood and adolescence until reaching stability by 18 years of age. The focus was on the closure patterns of synchondroses and sutures in the occipital bone, revealing distinct closure trajectories for the anterior intra-occipital synchondroses and the occipitomastoid suture. The findings, although based on a limited dataset, showcased specific age-related changes in width and closure percentages, providing valuable insights into growth dynamics within the first 2 years of life. Integration analyses revealed intricate relationships between skull and neck structures, emphasizing coordinated growth at different stages. Specific bone covariation patterns, as found between the first and second cervical vertebrae (C1 and C2), indicated synchronized morphological changes. Our results provide initial data for designing inclusive CCJ geometric models to predict normal and abnormal growth dynamics.
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