바로가기메뉴

본문 바로가기 주메뉴 바로가기

ACOMS+ 및 학술지 리포지터리 설명회

  • 한국과학기술정보연구원(KISTI) 서울분원 대회의실(별관 3층)
  • 2024년 07월 03일(수) 13:30
 

logo

메뉴

사람 치주인대줄기세포의 교원질 형성에 대한 법랑기질 유도체의 영향

The Effect of Enamel Matrix Derivatives on the Collagen Formation by Human Periodontal Ligament Stem Cells both in vitro and in vivo Analysis

Abstract

keywords
enamel matrix proteins, mesenchymal stromal cells, periodontal ligament, periodontium, regeneration, tissue engineering

참고문헌

1.

1. Hammarstrom L. Enamel matrix, cementum development and regeneration. J Clin Periodontol 1997; 24(9 Pt 2):658-668

2.

2. Heijl L, Heden G, Svardstrom G, Ostgren A. Enamel matrix derivative (EMDOGAIN) in the treatment of intrabony periodontal defects. J Clin Periodontol 1997; 24(9 Pt 2):705-714

3.

3. Gestrelius S, Lyngstadaas SP, Hammarstrom L. Emdogain--periodontal regeneration based on biomimicry. Clin Oral Investig 2000; 4(2):120-125

4.

4. Donos N, Sculean A, Glavind L, et al. Wound healing of degree III furcation involvements following guided tissue regeneration and/or Emdogain. A histologic study. J Clin Periodontol 2003; 30(12):1061-1068

5.

5. Casati MZ, Sallum EA, Nociti FH, Jr., et al. Enamel matrix derivative and bone healing after guided bone regeneration in dehiscence-type defects around implants. A histomorphometric study in dogs. J Periodontol 2002; 73(7):789-796

6.

6. Hammarstrom L, Heijl L, Gestrelius S. Periodontal regeneration in a buccal dehiscence model in monkeys after application of enamel matrix proteins. J Clin Periodontol 1997; 24(9 Pt 2):669-677

7.

7. Esposito M, Grusovin MG, Papanikolaou N, et al. Enamel matrix derivative (Emdogain) for periodontal tissue regeneration in intrabony defects. A Cochrane systematic review. Eur J Oral Implantol 2009; 2(4):247-266

8.

8. Lyngstadaas SP, Lundberg E, Ekdahl H, et al. Autocrine growth factors in human periodontal ligament cells cultured on enamel matrix derivative. Journal of clinical periodontology 2001; 28(2):181-188

9.

9. Warotayanont R, Zhu D, Snead ML, Zhou Y. Leucine-rich amelogenin peptide induces osteogenesis in mouse embryonic stem cells. Biochemical and biophysical research communications 2008; 367(1):1-6

10.

10. He J, Jiang J, Safavi KE, et al. Emdogain promotes osteoblast proliferation and differentiation and stimulates osteoprotegerin expression. Oral Surgery, Oral Medicine, Oral Pathology, Oral Radiology, and Endodontology 2004; 97(2):239-245

11.

11. Kawase T, Okuda K, Yoshie H, Burns DM. Cytostatic action of enamel matrix derivative (EMDOGAIN) on human oral squamous cell carcinoma-derived SCC25 epithelial cells. J Periodontal Res 2000; 35(5):291-300

12.

12. Gestrelius S, Andersson C, Lidstrom D, et al. In vitro studies on periodontal ligament cells and enamel matrix derivative. J Clin Periodontol 1997; 24(9 Pt 2):685-692

13.

13. Kim YT, Park JC, Choi SH, et al. The dynamic healing profile of human periodontal ligament stem cells: histological and immunohistochemical analysis using an ectopic transplantation model. J Periodontal Res 2012; 47(4):514-524

14.

14. Seo B-M, Miura M, Gronthos S, et al. Investigation of multipotent postnatal stem cells from human periodontal ligament. The Lancet 2004; 364(9429):149-155

15.

15. Jung IH, Park JC, Kim JC, et al. Novel application of human periodontal ligament stem cells and water-soluble chitin for collagen tissue regeneration: in vitro and in vivo investigations. Tissue Eng Part A 2012; 18(5-6):643-653

16.

16. Park JC, Kim JM, Jung IH, et al. Isolation and characterization of human periodontal ligament (PDL) stem cells (PDLSCs) from the inflamed PDL tissue: in vitro and in vivo evaluations. J Clin Periodontol 2011; 38(8):721-731

17.

17. Bosshardt DD, Selvig KA. Dental cementum: the dynamic tissue covering of the root. Periodontol 2000 1997; 13:41-75

18.

18. Houshmand B, Behnia H, Khoshzaban A, et al. Osteoblastic differentiation of human stem cells derived from bone marrow and periodontal ligament under the effect of enamel matrix derivative and transforming growth factor-beta. Int J Oral Maxillofac Implants 2013; 28(6):e440-450

19.

19. Haase HR, Bartold PM. Enamel matrix derivative induces matrix synthesis by cultured human periodontal fibroblast cells. J Periodontol 2001 ; 72(3):341-348

20.

20. Tanimoto K, Huang YC, Tanne Y, et al. Amelogenin enhances the osteogenic differentiation of mesenchymal stem cells derived from bone marrow. Cells Tissues Organs 2012; 196(5):411-419

21.

21. Jue SS, Lee WY, Kwon YD, et al. The effects of enamel matrix derivative on the proliferation and differentiation of human mesenchymal stem cells. Clin Oral Implants Res 2010; 21(7):741-746

22.

22. Park JC, Wikesjo UM, Koo KT, et al. Maturation of alveolar bone following implantation of an rhGDF-5/PLGA composite into 1-wall intra-bony defects in dogs: 24-week histometric observations. J Clin Periodontol 2012; 39(6):565-573

23.

23. Park JC, Kim JC, Kim YT, et al. Acquisition of human alveolar bone-derived stromal cells using minimally irrigated implant osteotomy: in vitro and in vivo evaluations. J Clin Periodontol 2012; 39(5):495-505

24.

24. Park JC, So SS, Jung IH, et al. Induction of bone formation by Escherichia coli-expressed recombinant human bone morphogenetic protein-2using block-type macroporous biphasic calcium phosphate in orthotopic and ectopic rat models. J Periodontal Res 2011; 46(6):682-690

25.

25. Park JC, Lee JB, Daculsi G, et al. Novel analysis model for implant osseointegration using ectopic bone formation via the recombinant human bone morphogenetic protein-2/macroporous biphasic calcium phosphate block system in rats: a proofof-concept study. J Periodontal Implant Sci 2012; 42(4):136-143

26.

26. Rohanizadeh R, Trecant-Viana M, Daculsi G. Ultrastructural study of apatite precipitation in implanted calcium phosphate ceramic: influence of the implantation site. Calcif Tissue Int 1999; 64(5):430-436

27.

27. Miramond T, Corre P, Borget P, et al. Osteoinduction of biphasic calcium phosphate scaffolds in a nude mouse model. J Biomater Appl 2014; 29(4):595-604

28.

28. Cattaneo V, Rota C, Silvestri M, et al. Effect of enamel matrix derivative on human periodontal fibroblasts: proliferation, morphology and root surface colonization. An in vitro study. J Periodontal Res 2003 ; 38(6):568-574

29.

29. Palioto DB, Coletta RD, Graner E, et al. The influence of enamel matrix derivative associated with insulin-like growth factor-I on periodontal ligament fibroblasts. J Periodontol 2004; 75(4):498-504

30.

30. Larjava H, Hakkinen L, Rahemtulla F. A biochemical analysis of human periodontal tissue proteoglycans. Biochem. J 1992; 284:267-274

31.

31. Kirkham J, Brookes S, Shore R, et al. The effect of glycosylaminoglycans on the mineralization of sheep periodontal ligament in vitro. Connective tissue research 1995; 33(1-3):23-29

32.

32. Bosshardt DD. Biological mediators and periodontal regeneration: a review of enamel matrix proteins at the cellular and molecular levels. J Clin Periodontol 2008; 35(8 Suppl):87-105

33.

33. Nokhbehsaim M, Winter J, Rath B, et al. Effects of enamel matrix derivative on periodontal wound healing in an inflammatory environment in vitro. J Clin Periodontol 2011; 38(5):479-490

34.

34. Hammarström L, Heijl L, Gestrelius S. Periodontal regeneration in a buccal dehiscence model in monkeys after application of enamel matrix proteins. Journal of Clinical Periodontology 1997; 24(9 Pt 2):669

35.

35. Hammarstrom L. The role of enamel matrix proteins in the development of cementum and periodontal tissues. Ciba. Found. Symp, 1997: 246-255.

36.

36. Bosshardt DD, Sculean A, Donos N, Lang NP. Pattern of mineralization after regenerative periodontal therapy with enamel matrix proteins. European journal of oral sciences 2006; 114(s1):225-231

37.

37. Sculean A, Donos N, Windisch P, et al. Healing of human intrabony defects following treatment with enamel matrix proteins or guided tissue regeneration. Journal of Periodontal Research 1999; 34(6):310-322

38.

38. Bosshardt DD, Sculean A, Windisch P, et al. Effects of enamel matrix proteins on tissue formation along the roots of human teeth. Journal of periodontal research 2005; 40(2):158-167

logo