Variations in the running pattern of trabeculae in growing human nasal bones.
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Biomedical subjects
Publications and source records attributed to S Niida.
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It is well known that the defect in bone resorption in osteopetrotic (op/op) mice brings about deformation of the cranium and failure of tooth eruption. However, the influences on longitudinal growth of the craniofacial skeleton have not been elucidated. This study was thus conducted to examine craniofacial morphology and longitudinal changes in the op/op mice by means of morphometric analysis with lateral cephalograms. Lateral cephalograms, taken every 10 days from 10- to 90-day-old mice, were analyzed on a personal computer for 11 measurement items. For the nasal bone region, the most prominent differences were found between the op/op and normal mice. The anterior cranial base and occipital bone height presented almost equivalent growth changes in both the op/op and normal mice. The size of mandible, meanwhile, was significantly smaller in the op/op mice than in the normal controls. The gonial angle was also significantly larger in the op/op mice than in the normal mice throughout the experimental period. Thus, substantial differences in craniofacial growth were demonstrated in various areas of the craniofacial complex, which are assumed essentially due to the lack of osteoclastic bone resorption during growing period. Since the difference became more prominent in the anatomic regions relevant to the masticatory functions, it would be a reasonable assumption that reduced masticatory function is also a key determinant for the less-developed craniofacial skeleton in the op/op mouse.
The defective bone resorption in the osteopetrotic op/op mouse brings about cranio-facial deformation and failure of tooth eruption. This study was conducted to elucidate the morphological changes of the condylar head and mandibular ramus in growing op/op mice. In normal mice, the condylar head is much broader than the ramus beneath it, enlargement and ossification of the condylar head begin after weaning, and the ramus becomes compact bone tissue. None of these changes were found in the op/op mice in the present observation. The condylar head was small, and its inner side was occupied by hypertrophic cartilage cells. In spite of the lack of bone resorption in op/op mice, the compaction of the mandibular ramus, which was composed of bone trabeculae, occurred later than that in normal mice. In view of recently studies reported evidence that local mechanical stress regulates the bone formation, we consider that undergrowth of the condylar head and the ramus in the op/op mouse results from not only a deficiency of osteoclasts but also insufficient mechanical stress from mastication.