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冷冻保存同种异体软骨移植修复膝关节软骨缺损(英文) 被引量:1

Repair of knee articular cartilage defects using cryopreserved osteochondral allografts
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摘要 背景:采用传统方法冻存后,关节软骨细胞存活率低,且软骨表层与深层的软骨细胞存活率差别较大,移植物易发生退行性变,导致手术失败。目的:经打孔梯度降温冻存膝关节软骨后并行异体移植,观察打孔梯度降温冻存对兔关节软骨的影响。方法:自2月龄新西兰白兔膝关节股骨膑面取骨软骨移植物,随机分为3组:实验组在软骨面以3mm×3mm矩阵打孔,梯度降温冷冻保存。以非打孔经梯度降温冷冻保存组、非打孔超低温冷冻保存组为对照。复温后移植到成年新西兰白兔相应膝关节缺损部位,观察各组移植物大体形态学、组织化学、免疫组织化学染色效果的差别。结果与结论:实验组、非打孔经梯度降温冷冻保存组大体形态学、组织化学、免疫组织化学染色效果均明显优于非打孔超低温冷冻保存组。实验组与非打孔经梯度降温冷冻保存组效果差别不明显,但实验组明显加强了对中间层软骨组织的保护程度。提示关节软骨的梯度降温冷冻保存效果优于快速降温冷冻保存;关节软骨打孔冷冻保存对深层细胞有一定的保护作用,提高了软骨细胞存活率,延缓了移植软骨组织的退变过程。 BACKGROUND:The survival rate of articular chondrocytes is low after traditional cryopreservation,and great differences existed in chondrocytes from surface layer and deep layer,which easily result in graft degeneration and lead to surgery failure.OBJECTIVE:To establish rabbit allograft models of graded frozen articular cartilages with holes made before cryopreservation,and to observe the effect of holed cryopreservation on the rabbit articular cartilages.METHODS:Osteochondral plugs taken aseptically from 2 months old rabbits were randomly divided into 3 groups:the experimental group,making holes(3 mm × 3 mm) in articular cartilages and graded freezing;non-hole graded freezing group,non-making holes and graded freezing;cryopreservation group:non-making holes and rapid freezing.The grafts were thawed and transplanted into the relevant articular cartilage defects of recipient rabbits.The grafts differences were observed by gross observation,histochemistry and immunohistochemistry staining.RESULTS AND CONCLUSION:The gross observation,histochemistry and immunohistochemistry staining of the experimental group were superior to the cryopreservation group.Though there were no significant differences between the non-hole graded freezing group and the experimental group,however,the experimental group enhanced the protective effect on cartilage tissue in the middle layer.The graded cryopreservation of articular cartilage gets an advantage over rapid cryopreservation.And the articular cartilage with holes could be preserved successfully in graded cryopreservation,which assures the survival and function of chondrocytes and slows down degrading process of the articular cartilage tissue after thawed and transplanted.
出处 《中国组织工程研究与临床康复》 CAS CSCD 北大核心 2010年第53期10058-10062,共5页 Journal of Clinical Rehabilitative Tissue Engineering Research
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  • 1张云昌,刘植珊,沈志鹏,郑亚萍.新鲜及冷冻同种异体胎兔软骨移植的实验研究[J].中华骨科杂志,1996,16(2):114-117. 被引量:12
  • 2Muldrew K,Cryobiology,2000年,40卷,2期,102页
  • 3刘金刚,低温医学,1993年,938页
  • 4Muldrew K,Novak K,Studholme C,et al.Transplantation of articular cartilage following a step-cooling cryopreservation protocol.Cryobiology,2001,43:260-267.
  • 5Muldrew K,Hurtig M,Novak K,et al.Localization of freezing injury in articular cartilage.Cryobiology,1994,31:31-38.
  • 6Schachar NS,Novak K,Hurtig M,et al.Transplantation of cryopreserved osteochondral Dowel allografts for repair of focal articular defects in an ovine model.J Orthop Res,1999,17:909-919.
  • 7Arnockzy SP,McDevitt CA,Schmidt MB,et al.The effect of cryopreservation on canine menisci:A biochemical,morphologic,and biomechanical evaluation.J Orthop Res,1988,6:1-12.
  • 8Kiefer GN,Sundby K,McAllister D,et al.The effect of cryopreservation on the biomechanical behavior of bovine articular cartilage.J Orthop Res,1989,7:494-501.
  • 9Mankin HJ, Gebhardt MC, Tomford WW, et al. Long-term results of allograft replacement of bone tumors[J]. Clin Othop Rel Res, 1996,324:86-97.
  • 10Allan J, Jussi E, Tauno E, et al. Immune responses and clinical outcome of massive human osteoarticular allografts[J]. Clin Orthop, 1998,346:196-206.

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  • 1Gao J, Dennis JE, Solchaga LA, et al. Tissue-engineered fabrication of an osteochondral composite graft using rat bone marrow-derived mesenchymal stem cells. Tissue Eng. 2001; 7(4):363-371.
  • 2Schaefer D, Martin I, Shastri P, et al. In vitro generation of osteochondral composites. Biomaterials. 2000;21(24):2599- 2606.
  • 3Alhadlaq A, Mao JJ. Tissue-engineered osteochondral constructs in the shape of an articular condyle. J Bone Joint Surg Am. 2005;87(5):936-944.
  • 4Alhadlaq A, Mao JJ. Tissue-engineered neogenesis of human-shaped mandibular condyle from rat mesenchymal stem cells. J Dent Res. 2003;82(12):951-956.
  • 5Chang CH, Lin FH, Lin CC, et al. Cartilage tissue engineering on the surface of a novel gelatin-calcium-phosphate biphasic scaffold in a double-chamber bioreactor. J Biomed Mater Res B Appl Biomater. 2004;71 (2):313-321.
  • 6Estes BT, Gimble JM, Guilak F. Mechanical signals as regulators of stem cell fate. Curr-rop Dev Biol. 2004;60: 91-126.
  • 7Waldman SD, Spiteri CG, Grynpas MD, et al. Long-term intermittent shear deformation improves the quality of cartilaginous tissue formed in vitro. J Orthop Res. 2003; 21 (4):590-596.
  • 8Schleicher I, Lips KS, Sommer U, et al. Biphasic scaffolds for repair of deep osteochondral defects in a sheep model. J Surg Res. 2013; 183(1 ): 184-192.
  • 9Kim K, Lam J, Lu S, et al. Osteochondral tissue regeneration using a bilayered composite hydrogel with modulating dual growth factor release kinetics in a rabbit model. J Control Release. 2013;168(2):166-178.
  • 10Mayr HO, Klehm J, Schwan S, et al. Microporous calcium phosphate ceramics as tissue engineering scaffolds for the repair of osteochondral defects: biomechanical results. Acta Biomater. 2013;9(1 ):4845-4855.

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