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Published in: European Journal of Plastic Surgery 8/2006

01-04-2006 | Original Article

Induction of cartilage growth in a rabbit ear model: a pilot study

Authors: Dean D. Ad-El, Jonah Selah, Gal Goshen, Izhac Dano

Published in: European Journal of Plastic Surgery | Issue 8/2006

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Abstract

Identifying the control of cartilage regeneration is important both clinically and in tissue engineering research. A rabbit ear model was used to simulate surgery and trauma to explore the effect of perichondrial stripping on underlying cartilage in vivo. Ten rabbits (20 ears) formed four groups: two controls and two experimental groups. Group 1 served as the unoperated control group and underwent no treatment. Group 2 served as the operated control group and underwent elevation of auricular skin flaps without stripping the perichondrium. Groups 3 and 4 underwent increasing degrees of surgical insult. Group 3 underwent elevation of a skin flap with stripping of the perichondrium on both sides of the cartilage. Group 4 underwent both perichondrial stripping and the insertion of a thin silicone sheet as a barrier between the denuded cartilage and the skin flaps. At 3 months, punch biopsies of the cartilage were performed in each zone of insult, creating multiple thin sections. The results were analyzed using a computerized morphometry system. Histopathological examination of the groups revealed a regenerative layer of neocartilage which showed distinct hypercellular features of regeneration. The thickness of the new layer was proportional to the degree of the insult (p<0.01). A controlled insult to the perichondrium created a regenerative layer of cartilage; it seems that this layer of neocartilage is proportional to the insult. Further studies are in progress to clarify these findings.
Literature
1.
go back to reference Solchaga LA, Goldberg VM, Caplan AI (2001) Cartilage regeneration using principles of tissue engineering. Clin Orth 391S:161–170CrossRef Solchaga LA, Goldberg VM, Caplan AI (2001) Cartilage regeneration using principles of tissue engineering. Clin Orth 391S:161–170CrossRef
2.
go back to reference Skoog T, Ohlsen L, Sohn SA (1972) Perichondrial potential for cartilage regeneration. Scand J Plast Reconstr Surg 6:123–125PubMedCrossRef Skoog T, Ohlsen L, Sohn SA (1972) Perichondrial potential for cartilage regeneration. Scand J Plast Reconstr Surg 6:123–125PubMedCrossRef
3.
go back to reference Upton J, Sohn SA, Glowacki J (1981) Neo-cartilage from transplanted perichondrium: what is it? Plast Reconstr Surg 68(2):166–172PubMed Upton J, Sohn SA, Glowacki J (1981) Neo-cartilage from transplanted perichondrium: what is it? Plast Reconstr Surg 68(2):166–172PubMed
4.
go back to reference Wright WK, Igarashi M, Greenberg D (1977) Regeneration of cartilage in the monkey auricle after subperichondrial resection. Arch Otolaryngol 103:32–34PubMed Wright WK, Igarashi M, Greenberg D (1977) Regeneration of cartilage in the monkey auricle after subperichondrial resection. Arch Otolaryngol 103:32–34PubMed
5.
go back to reference Jeffries DJ, Rhys Evans PH (1984) Cartilage regeneration following septal surgery in young rabbits. J Laryngol Otol 98:577–583PubMedCrossRef Jeffries DJ, Rhys Evans PH (1984) Cartilage regeneration following septal surgery in young rabbits. J Laryngol Otol 98:577–583PubMedCrossRef
6.
go back to reference Sohn SA, Ohlsen L (1974) Growth of cartilage from free perichondrial graft placed across a defect in a rabbit’s trachea. Plast Reconstr Surg 53:55–60PubMedCrossRef Sohn SA, Ohlsen L (1974) Growth of cartilage from free perichondrial graft placed across a defect in a rabbit’s trachea. Plast Reconstr Surg 53:55–60PubMedCrossRef
7.
go back to reference Amiel D, Coutts RD, Abel M (1985) Rib perichondrial grafts for the repair of full thickness articular defects: A morphological and biochemical study in rabbits. J Bone Jt Surg 67A:911–920 Amiel D, Coutts RD, Abel M (1985) Rib perichondrial grafts for the repair of full thickness articular defects: A morphological and biochemical study in rabbits. J Bone Jt Surg 67A:911–920
8.
go back to reference Eisenmann ML (1983) The growth potential of autograft cartilage: an experimental study. Arch Otolaryngol 10:469–472 Eisenmann ML (1983) The growth potential of autograft cartilage: an experimental study. Arch Otolaryngol 10:469–472
9.
go back to reference Margulis A, Bauer BS, Alizadeh K (2004) Ear reconstruction after auricular chondritis secondary to ear piercing. Plast Reconstr Surg 113(2):768–769 Margulis A, Bauer BS, Alizadeh K (2004) Ear reconstruction after auricular chondritis secondary to ear piercing. Plast Reconstr Surg 113(2):768–769
10.
go back to reference Lack W, Bosch P, Lintner F (1986) Influence of trypsin on the regeneration of hyaline articular cartilage. Acta Orthop Scand 57(2):123–125PubMedCrossRef Lack W, Bosch P, Lintner F (1986) Influence of trypsin on the regeneration of hyaline articular cartilage. Acta Orthop Scand 57(2):123–125PubMedCrossRef
11.
go back to reference Skoog V, Widenfalk B, Ohlsen L (1990) The effect of growth factors and synovial fluid on chondrogenesis in the perichondrium. Scand J Plast Reconstr Surg Hand Surg 24:89PubMedCrossRef Skoog V, Widenfalk B, Ohlsen L (1990) The effect of growth factors and synovial fluid on chondrogenesis in the perichondrium. Scand J Plast Reconstr Surg Hand Surg 24:89PubMedCrossRef
12.
go back to reference Lee KH, Song SU, Hwang TS et al (2001) Regeneration of hyaline cartilage by cell mediated gene therapy using transforming growth factor beta 1-producing fibroblasts. Hum Gene Ther 12(14):1805–1813PubMedCrossRef Lee KH, Song SU, Hwang TS et al (2001) Regeneration of hyaline cartilage by cell mediated gene therapy using transforming growth factor beta 1-producing fibroblasts. Hum Gene Ther 12(14):1805–1813PubMedCrossRef
13.
go back to reference Blaney Davidson EN, Schartstuhl A, Vitters EL, van der Kraan PM, van den Berg WB (2005) Reduced transforming growth factor beta signaling in cartilage of old mice: role in impaired repair capacity. Arthritis Res Ther 7(6):R1338–R1347PubMedCrossRef Blaney Davidson EN, Schartstuhl A, Vitters EL, van der Kraan PM, van den Berg WB (2005) Reduced transforming growth factor beta signaling in cartilage of old mice: role in impaired repair capacity. Arthritis Res Ther 7(6):R1338–R1347PubMedCrossRef
14.
go back to reference Hiraide A, Yokoo N, Xin KQ, Okuda K, Mizukami H, Ozawa K, Saito T (2005) Repair of articular cartilage defect by intra-articular administration of basic fibroblast growth factor gene using adeno associated virus vector. Hum Gene Ther 16(12):1413–1421PubMedCrossRef Hiraide A, Yokoo N, Xin KQ, Okuda K, Mizukami H, Ozawa K, Saito T (2005) Repair of articular cartilage defect by intra-articular administration of basic fibroblast growth factor gene using adeno associated virus vector. Hum Gene Ther 16(12):1413–1421PubMedCrossRef
15.
go back to reference Boenisch M, Mink A (2000) Clinical and histological results of septoplasty with resorbable implant. Arch Otolaryngol Head Neck Surg 126(11):1373–1377PubMed Boenisch M, Mink A (2000) Clinical and histological results of septoplasty with resorbable implant. Arch Otolaryngol Head Neck Surg 126(11):1373–1377PubMed
16.
go back to reference Brent B (1998) Technical advances in ear reconstruction with autogenous rib cartilage grafts: personal experience with 1200 cases. Plast Reconstr Surg 102(4):319–334 Brent B (1998) Technical advances in ear reconstruction with autogenous rib cartilage grafts: personal experience with 1200 cases. Plast Reconstr Surg 102(4):319–334
17.
go back to reference Duynstee MLG, Verwoerd-Verhoef HL, Verwoerd CDA et al (2002) The dual role of perichondrium in cartilage wound healing. Plast Reconstr Surg 110(4):1073–1079PubMedCrossRef Duynstee MLG, Verwoerd-Verhoef HL, Verwoerd CDA et al (2002) The dual role of perichondrium in cartilage wound healing. Plast Reconstr Surg 110(4):1073–1079PubMedCrossRef
18.
go back to reference Sela J, Shani J, Borut-Mintz S et al (1996) A quantitative morphometric study of the kinetics of tissue regeneration after administration of cisplatin. Anticancer Drugs 7(5):579–585PubMedCrossRef Sela J, Shani J, Borut-Mintz S et al (1996) A quantitative morphometric study of the kinetics of tissue regeneration after administration of cisplatin. Anticancer Drugs 7(5):579–585PubMedCrossRef
Metadata
Title
Induction of cartilage growth in a rabbit ear model: a pilot study
Authors
Dean D. Ad-El
Jonah Selah
Gal Goshen
Izhac Dano
Publication date
01-04-2006
Publisher
Springer-Verlag
Published in
European Journal of Plastic Surgery / Issue 8/2006
Print ISSN: 0930-343X
Electronic ISSN: 1435-0130
DOI
https://doi.org/10.1007/s00238-006-0048-z

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