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在兔全半月板切除术模型中使用半月板细胞和聚合物支架进行全半月板再生。

Regeneration of whole meniscus using meniscal cells and polymer scaffolds in a rabbit total meniscectomy model.

作者信息

Kang Sun-Woong, Son Sun-Mi, Lee Jae-Sun, Lee Eung-Seok, Lee Kwon-Yong, Park Sang-Guk, Park Jung-Ho, Kim Byung-Soo

机构信息

Department of Chemical Engineering, Hanyang University, Seoul 133-791, Korea.

出版信息

J Biomed Mater Res A. 2006 Jun 15;77(4):659-71. doi: 10.1002/jbm.a.30579.

Abstract

The current treatments of meniscal lesion in knee joint are not perfect to prevent adverse effects of meniscus injury. Tissue engineering of meniscus using meniscal cells and polymer scaffolds could be an alternative option to treat meniscus injury. This study reports on the regeneration of whole medial meniscus in a rabbit total meniscectomy model using the tissue engineering technique. Biodegradable scaffolds in a meniscal shape were fabricated from polyglycolic acid (PGA) fiber meshes that were mechanically reinforced by bonding PGA fibers at cross points with 75:25 poly(lactic-co-glycolic acid). The compressive modulus of the bonded PGA scaffold was 28-fold higher than that of nonbonded scaffold. Allogeneic meniscal cells were isolated from rabbit meniscus biopsy and cultured in vitro. The expanded meniscal cells were seeded onto the polymer scaffolds, cultured in vitro for 1 week, and transplanted to rabbit knee joints from which medial menisci were removed. Ten or 36 weeks after transplantation, the implants formed neomenisci with the original scaffold shape maintained approximately. Hematoxylin and eosin staining of the sections of the neomenisci at 6 and 10 weeks revealed the regeneration of fibrocartilage. Safranin-O staining showed that abundant proteoglycan was present in the neomenisci at 10 weeks. Masson's trichrome staining indicated the presence of collagen. Immunohistochemical analysis showed that the presence of type I and II collagen in neomenisci at 10 weeks was similar to that of normal meniscal tissue. Biochemical and biomechanical analyses of the tissue-engineered menisci at 36 weeks were performed to determine the quality of the tissue-engineered menisci. Tissue-engineered meniscus showed differences in collagen content and aggregate modulus in comparison with native meniscus. This study demonstrates, for the first time, the feasibility of regenerating whole meniscal cartilage in a rabbit total meniscectomy model using the tissue engineering method.

摘要

目前膝关节半月板损伤的治疗方法在预防半月板损伤的不良影响方面并不完美。利用半月板细胞和聚合物支架进行半月板组织工程可能是治疗半月板损伤的一种替代选择。本研究报告了在兔全半月板切除模型中使用组织工程技术再生整个内侧半月板的情况。半月板形状的可生物降解支架由聚乙醇酸(PGA)纤维网制成,通过在交叉点用75:25的聚(乳酸-共-乙醇酸)粘结PGA纤维进行机械增强。粘结PGA支架的压缩模量比未粘结支架高28倍。从兔半月板活检中分离出同种异体半月板细胞并进行体外培养。将扩增后的半月板细胞接种到聚合物支架上,体外培养1周,然后移植到已切除内侧半月板的兔膝关节中。移植后10周或36周,植入物形成了新半月板,大致保持了原始支架的形状。新半月板切片在6周和10周时的苏木精-伊红染色显示纤维软骨再生。番红O染色显示10周时新半月板中存在丰富的蛋白聚糖。Masson三色染色表明存在胶原蛋白。免疫组织化学分析显示,10周时新半月板中I型和II型胶原蛋白的存在与正常半月板组织相似。对36周时的组织工程半月板进行了生化和生物力学分析,以确定组织工程半月板的质量。与天然半月板相比,组织工程半月板在胶原蛋白含量和聚集模量方面存在差异。本研究首次证明了在兔全半月板切除模型中使用组织工程方法再生整个半月板软骨的可行性。

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