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Presence of chondroid bone on rat mandibular condylar cartilage

An immunohistochemical study

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Summary

Immunohistochemical techniques were used to examine the locations of type I and type II collagens in the the most anterior and the posterosuperior regions of the mandibular condylar cartilages of young and adult rats. Large ovoid and polygonal cells, which were morphologically different from any of the neighboring cells, e.g., mature or hypertrophied chondrocytes, osteoblasts, or fibroblasts, were observed at the most anterior margin of the young and adult condylar cartilages. In the extracellular matrix (ECM) of this area, an eosinophilic staining pattern similar to that in bone matrix was observed, while the peripheral ECM showed basophilic staining and very weak reactivity to Alcian blue. Immunohistochemical examination showed that the ECM was stained heavily and diffusely for type I collagen, while a staining for type II collagen was faint and limited to the peripheral ECM. Two different staining patterns for type II collagen could be recognized in the ECM: one pattern revealed a very faint and diffuse reaction while the other showed a weak rim-like reaction. These staining patterns were markedly different from those in the cartilaginous cell layer in the posterosuperior area of the condylar secondary cartilage, which showed faint staining for type I collagen and a much more intense staining for type II collagen. These observations reveal the presence of chondroid bone, a tissue intermediate between bone and cartilage tissues, in the mandibular condylar cartilage, and suggest the possibility of osteogenic transdifferentiation of mature chondrocytes.

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References

  • Akimoto A, Sasa R, Segawa K, Takiguchi R (1991) Morphological characterization of chondroid bone in the alveolar crest of the neonatal rat mandible. Jpn J Oral Biol 33:396–399

    Google Scholar 

  • Beresford WA (1981) Chondroid bone, secondary cartilage and metaplasia. Urban & Schwarzenberg, Baltimore München

    Google Scholar 

  • Closs EI, Murray AB, Schmidt J, Schön A, Erfle V, Strauss PG (1990) c-fos expression precedes osteogenic differentiation of cartilage cells in vitro. J Cell Biol 111:1313–1323

    Google Scholar 

  • Copray JCVM, Jansen HWB, Duterloo HS (1986) Growth and growth pressure of mandibular condylar and some primary cartilages of the rat in vitro. Am J Orthod Dentfac Orthop 90:19–28

    Google Scholar 

  • Enlow DH (1962) A study of the post-natal growth and remodeling of bone. Am J Anat 110:79–101

    Google Scholar 

  • Goret-Nicaise M (1984) Identification of collagen type I and type II in chondroid tissue. Calcif Tissue Int 36:682–689

    Google Scholar 

  • Goret-Nicaise M, Dhem A (1987) Electron microscopic study of chondroid tissue in the cat mandible. Calcif Tissue Int 40:219–223

    Google Scholar 

  • Hall BK (1972) Immobilization and cartilage transformation into bone in the embryonic chick. Anat Rec 173:391–404

    Google Scholar 

  • Haskell B, Day M, Tetz J (1986) Computer-aided modeling in the assessment of the biomechanical determinants of diverse skeletal patterns. Am J Orthod 89:363–382

    Google Scholar 

  • Huysseune A (1986) Late skeletal development at the articulation between upper pharyngeal jaws and neurocranial base in the fish, Astatotilapia elegans, with the participation of a chondroid form of bone. Am J Anat 177:119–137

    Google Scholar 

  • Huysseune A, Verraes W (1986) Chondroid bone on the upper pharyngeal jaws and neurocranial base in the adult fish Astatotilapia elegans. Am J Anat 177:527–535

    Google Scholar 

  • Kantomaa T (1986) New aspects of the histology of the mandibular condyle in the rat. Acta Anat 126:218–222

    Google Scholar 

  • Kantomaa T, Hall BK (1988) Mechanism of adaptation in the mandibular condyle of the mouse. An organ culture study. Acta Anat 132:114–119

    Google Scholar 

  • Lennette DA (1978) An improved mounting medium for immunofluorescence microscopy. Am J Clin Pathol 69:647–648

    Google Scholar 

  • Livne E, von der Mark K, Silbermann M (1985) Morphologic and cytochemical changes in maturing and osteoarthritic articular cartilage in the temporomandibular joint of mice. Arthritis Rheum 28:1027–1038

    Google Scholar 

  • Luder HU, Schroeder HE (1992) Light and electron microscopic morphology of the temporomandibular joint in growing and mature crab-eating monkeys (Macaca fascicularis): the condylar calcified cartilage. Anat Embryol 185:189–199

    Google Scholar 

  • Luder HU, Leblond CP, von der Mark K (1988) Cellular stages in cartilage formation as revealed by morphometry, radioautography and type II collagen immunostaining of the mandibular condyle from weanling rats. Am J Anat 182:197–214

    Google Scholar 

  • von der Mark K (1980) Immunological studies on collagen type transition in chondrogenesis. Curr Topics Dev Biol 14:199–225

    Google Scholar 

  • Mizoguchi I, Nakamura M, Takahashi I, Kagayama M, Mitani H (1990) An immunohistochemical study of localization of type I and type II collagens in mandibular condylar cartilage compared with tibial growth plate. Histochemistry 93:593–599

    Google Scholar 

  • Mizoguchi I, Nakamura M, Takahashi I, Kagayama M, Mitani H (1992) A comparison of the immunohistochemical localization of type I and type II collagens in craniofacial cartilages of the rat. Acta Anat 144:59–64

    Google Scholar 

  • Silbermann M, Frommer J (1972) Further evidence for the vitality of chondrocytes in the mandibular condyle as revealed by [35S]-sulphate autoradiography. Anat Rec 174:503–512

    Google Scholar 

  • Silbermann M, Reddi AH, Hand AR, Leapman RD, von der Mark K, Franzen A (1987a) Chondroid bone arises from mesenchymal stem cells in organ culture of mandibular condyles. J Craniofac Genet Dev Biol 7:59–79

    Google Scholar 

  • Silbermann M, Reddi AH, Hand AR, Leapman RD, von der Mark K, Franzen A (1987b) Further characterization of the extracellular matrix in the mandibular condyle in neonatal mice. J Anat 151:169–188

    Google Scholar 

  • Strauss PG, Closs EI, Schmidt J, Erfle V (1990) Gene expression during osteogenic differentiation in mandibular condyles in vitro. J Cell Biol 110:1369–1378

    Google Scholar 

  • Stutzmann JJ, Petrovic AG (1982) Bone cell histogenesis: the skeletoblasts as a stem-cell for preosteoblasts and for secondary-type prechondroblasts. In: Dixon AD, Sarnat BG (eds) Factors and mechanisms influencing bone growth. Liss, New York, pp 29–43

    Google Scholar 

  • Takahashi I (1991) A histological study of the effect of the lateral pterygoid muscle activity on the growth of rat mandibular condylar cartilage. J Jpn Orthod 50:368–382

    Google Scholar 

  • Thesingh CW, Groot CG, Wassenaar AM (1991) Transdifferentiation of hypertrophic chondrocytes into osteoblasts in murine fetal metatarsal bones, induced by co-cultured cerebrum. Bone Miner 12:25–40

    Google Scholar 

  • Wright DM, Moffett BC Jr (1974) The postnatal development of the human temporomandibular joint. Am J Anat 141:235–250

    Google Scholar 

  • Yoshioka C, Yagi T (1988) Electron microscopic observations on the fate of hypertrophic chondrocytes in condylar cartilage of rat mandible. J Craniofac Genet Dev Biol 8:253–264

    Google Scholar 

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Mizoguchi, I., Nakamura, M., Takahashi, I. et al. Presence of chondroid bone on rat mandibular condylar cartilage. Anat Embryol 187, 9–15 (1993). https://doi.org/10.1007/BF00208192

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