발육중인 생쥐 하악 과두에서 연골 및 골의 특이 유전자 발현

Expression of mRNAs characteristic of cartilage and bone in the developing mandibular condyle of mice

  • 지국섭 (조선대학교 치과대학 교정학교실) ;
  • 윤영주 (조선대학교 치과대학 교정학교실) ;
  • 박주철 (조선대학교 치과대학 구강조직학교실) ;
  • 김광원 (조선대학교 치과대학 교정학교실)
  • Ji, Kuk-Soep (Department of Orthodontics, College of Dentistry, Chosun University) ;
  • Yoon, Young-Jooh (Department of Orthodontics, College of Dentistry, Chosun University) ;
  • Park, Joo-Cheol (Department of Oral Histology, College of Dentistry, Chosun University) ;
  • Kim, Kwang-Won (Department of Orthodontics, College of Dentistry, Chosun University)
  • 발행 : 2004.04.01

초록

하악과두 연골이 발생하고 분화하는 과정에서 나타내는 특성을 규명하기 위하여, 발생 16, 18일과 출생 1일, 5일, 10일, 20일 및 30일 후의 ICR생쥐의 하악과두를 형태학적으로 분석하고, 생쥐 I형, II형, X형 교원질, Indian hedgehog (IHH) 및 BMP-4 등의 mRNA 발현을 in-situ hybridization 방법으로 연구하였다. 1. 생쥐 I형 및 II형 교원질 mRNA는 하악과두의 발생 및 성장과정에서 모두 발현되었다. I형 교원질 mRNA는 휴지층과 증식층의 상부에서 관찰된 반면 II형 교원질은 휴지층과 증식층 그리고 비대연골층의 상부에서 관찰되었다. 2. 하악과두 연골은 성장에 따라 비대연골층이 계속 증가하는 소견을 보였으며, 비대 연골층의 세포들은 특징적으로 X형 교원질 mRNA의 발현을 보였다. 3. BMP-4 mRNA는 하악과두 연골 원기와 골화중인 하악골체에서 모두 발현되었다. 4. IHH mRNA는 하악과두의 발생과정에서 증식 연골층의 하부와 비대연골층의 상부에서 선택적으로 관찰되었다.

It has not been elucidated whether the initiation of condylar development of the mandible is related with the periosteum of the mandible, or if it derives from a separate programmed blastema not related with the mandible. Also, although the mandibular condylar cartilage is known to promote growth, few studies have dealt with molecular-biologic mechanisms such as the expression of specific genes according to the differentiation of the mandibular condyle. To elucidate the unique cellular characteristics, development, and differentiation process of the mandibular condyle, an examination of expressions of genes characteristic of cartilage and bone were carried out using RT-PCR and mRNA in situ hybridization. 1. Type? collagen mRNA was detected with type II collagen mRNA in the differentiation and growth process of the cartilage of the mandibular condyle. TypeII collagen mRNA was demonstrated in the whole resting md upper part of the poliferative zone, whereas type II collagen mRNA was observed in the resting, proliferative and upper hypertrophic cartilage zone of the mandibular condyle. 2. The condylar cartilage rapidly increased in size due to the accumulation of hypertrophic chondrocytes as characterized by the expression of type II collagen mRNA during postnatal development. 3. BMP-4 mRNA was present in the anlage of the future condylar process and also in the ossifying mandibular body. 4. IHH mRNA was limited exclusively to the lower part of the proliferative zone and the upper part of the hypertrophic cartilage zone during condylar development. These findings were different from those in the growth-plate cartilage of the long bone, indicating a characteristic feature of the differentiation of the chondrocytes in the condylar cartilage present in prenatal and postnatal development. Furthermore, it was also suggested that chondroblasts of condylar cartilage rapidly differentiate into hypertrophic chondrocytes with increased functional Load force such as muscle activity and mastication.

키워드

참고문헌

  1. Cancedda RC, Castagnola FDP. Chondrocyte differentiation. Int Rev Cytol 1995 : 159 : 265-359
  2. Joseph AB, Michael GE, Linda S, Stephen BT. Skeletal growth and development. Am Acad Ortho Surg Symp. 1997: 187-241
  3. Kathryn SEC, Elizabeth TL, Patrick PLT. Expression of the mouse Q (II) collagen gene is not restricted to cartilage during development. Development. 1991 : 111 : 945-53
  4. Kosher RA, Kulyk WM, Gay Sw. Collagen gene expression during limb cartilage differentiation. J Cell BioI 1986: 102: 1151-6
  5. B두 Ami Y, von der Mark k, Franzen A.et. al. Immunohistochemical studies of the extracellular matrix in the condylar cartilage of the human fetal mandible: Collagens and noncollagenous proteins. Am J Anat 1991 : 190 : 157-66
  6. Ali AM, Sharawy M. An immunohistochemical study of collagen Types Ill, IX in rabbit craniomandibular joint tissues following surgical induction of anterior disk displacement. J Oral Pathol med 1996: 25 : 78-85
  7. Heli VP, Thesleff I. Initiation of secondary cartilage in the mandible of the syrian hamster in the absence of muscle function. Archs Oral BioI 1993: 38 : 49-54
  8. Liisa A. Salo A, Tuomo K. Type II collagen expression in the mandibular condyle during growth adaptation : An experimental study in the rabbit. Calcif Tissue Int 1993: 52 : 465-9
  9. Ishii M, Suda N, Tengean T, Suzuki S, Kuroda T. Immunohisto-chemical findings type I and type II collagen in prenatal mouse mandibular condylar cartilage compared with the tibial anlage. Arch Oral BioI 1998: 43 : 545-50 https://doi.org/10.1016/S0003-9969(98)00028-4
  10. Fukada K, Shibata S, Suzuki S, Ohya K, Kuroda T. In situ hybridization study of type I, II, X collagens and aggrecan mRNAs in the developing condylar cartilage of fetal mouse mandible. J Anat 1999 : 195: 321-9
  11. David AK. Development of the human temporomandibular joint. Brit J Oral Surg 1982 : 20 : 217-24
  12. Vortkamo A, Lee K, Lanske B, et. al. Regulation of rate of cartilage differentiation by indian hedgehog and PTH-related protein. Science 1996 : 273 : 613-22
  13. Kulyk WM, Upholt WE, Kosher RA. Fibronectin gene expression during limb cartilage differentiation. Development. 1989 : 106: 449-55
  14. Ghafari J, Cowin DH. Condylar cartilage in the muscular dystrophic mouse. Am J Orthd Dentofac Orthop 1989: 95 : 107-14
  15. Deleaersijder W, Hong G, Corturindt R. et. aI. Isolation of markers for chondro-osteogenic differentiation using eDNA library subtraction. Molecular cloning and characterization of a gene belonging to a hovel mulfigene family of integral menbranc profeins. J Biol Chem 1996: 271 : 19475-82
  16. Styipe NS, Gcotiner PF. Gene regulation during cartilage differentiation : Temporal and spatial expression of link protein and cartilage matrix protein in the developing limb. Development 1989 : 107 : 23-33
  17. Hinton RJ, Carlson. Response of the mandibularjoint to loss of incisal function in the rat. Acta Anat 1986 : 125: 145-51
  18. Hinton RJ. Effect of dietary consistency on matrix synthesis and composition in the rat condylar cartilage. Acta Anat 1993 : 147: 97-104
  19. Devlin CJ. Brickell PM, Taylor ER, et. aI. In situ hybridization reveals differential spatial distribution of mRNAsfor type I and type II colla-gen in the chick limb bud. Development 1988: 103: 111-8
  20. Shibata S, Suzuki S, Tengan T, Ishii M, Kuroda T. A histological study of the developing condylar cartilage of the fetal mouse mandible using coronal sections, Archs Oral BioI 1996: 41 : 47-54
  21. Shibata S, Fukada K, Suzuki S, Yamashita Y. Immunohistochemistry of collagen type IIand X, and enzyme-histochemistry of alkaline phosphatase in the developing condylar cartilage of the fetal mouse mandible. J Aant 1997: 191: 561-70
  22. Salo LA, Hoyland J, Ayad S. et. al. The expression of types X and V collagen and fibrillin in rat mandibular condylar cartilage. Acta Odontol Scand 1996: 34 : 295-302
  23. Marchi F, Luder HS, Leblond C-P. Changes in cell's secretory organelles and extracellular matrix during endochondral ossification in mandibularcondyleof the growing rat. Am J Anat 1991 : 190: 41-73
  24. Kosher KA, Gay SW, Kamanitz JR et. al. Cartilage proteoglycan core protein gene expression during limb cartilage differentiation. Develop BioI 1986: 118: 112-7
  25. Smith DM, McLachlan KR, McCall WD Jr. A numerical model of tem-poromandibular joint loading. J Dent Res 1986 : 65 : 1046-52
  26. Shaw RM, Molyneux GS. The effects mandibular hypofunction on the development of the mandibulardisc in the rabbit. Archs Oral Biol 1994 : 39 : 747-52
  27. Tuominen M, Kantomaa T, Dirttiniem P. Effect of food consistency of the shape of the articular eminenceand the mandible. An experimental study on the rabbit. Acta Odontal Scand 1993 : 51 : 65-72
  28. Wabeke KB, Spruijt RJ, Van der Zag J. The reliability of clinical methods for recording temporomandibular joint sounds. Dent Res 1994 : 73 : 1157 -62
  29. Yamada K, Kimmel DB. The effect of dietary consistency on bone mass and turnover in the growing rat mandible. Archs Oral Biol 1991: 36: 129-38