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首页> 外文期刊>International journal of oral and maxillofacial surgery >Production of three-dimensional tissue-engineered cartilage through mutual fusion of chondrocyte pellets
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Production of three-dimensional tissue-engineered cartilage through mutual fusion of chondrocyte pellets

机译:通过软骨细胞颗粒相互融合产生三维组织工程软骨

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摘要

In this study, the mutual fusion of chondrocyte pellets was promoted in order to produce large-sized tissue-engineered cartilage with a three-dimensional (3D) shape. Five pellets of human auricular chondrocytes were first prepared, which were then incubated in an agarose mold. After 3 weeks of culture in matrix production-promoting medium under 5.78 g/cm(2) compression, the tissue engineered cartilage showed a sufficient mechanical strength. To confirm the usefulness of these methods, a transplantation experiment was performed using beagles. Tissue-engineered cartilage prepared with 50 pellets of beagle chondrocytes was transplanted subcutaneously into the cell-donor dog for 2 months. The tissue-engineered cartilage of the beagles maintained a rod-like shape, even after harvest. Histology showed fair cartilage regeneration. Furthermore, 20 pellets were made and placed on a beta-tricalcium phosphate prism, and this was then incubated within the agarose mold for 3 weeks. The construct was transplanted into a bone/cartilage defect in the cell-donor beagle. After 2 months, bone and cartilage regeneration was identified on micro-computed tomography and magnetic resonance imaging. This approach involving the fusion of small pellets into a large structure enabled the production of 3D tissue-engineered cartilage that was close to physiological cartilage tissue in property, without conventional polyper scaffolds.
机译:在这项研究中,促进了软骨细胞沉淀物的相互融合,以产生具有三维(3D)形状的大型组织工程软骨。首先制备五粒人耳软骨细胞,然后将其在琼脂糖模具中孵育。在5.78 g / cm(2)压缩下在基质生产促进培养基中培养3周后,组织工程软骨显示出足够的机械强度。为了证实这些方法的有效性,使用比格犬进行了移植实验。将由50粒比格犬软骨细胞制成的组织工程软骨皮下移植到供体狗中2个月。比格犬的组织工程软骨即使在收获后仍保持杆状形状。组织学显示软骨再生良好。此外,制备20个小球并将其放置在β-磷酸三钙棱镜上,然后将其在琼脂糖模具中温育3周。将构建体移植到细胞供体比格犬的骨/软骨缺损中。 2个月后,通过微计算机断层扫描和磁共振成像确定了骨骼和软骨的再生。这种将小颗粒融合到大结构中的方法可以生产3D组织工程化的软骨,其性质与生理软骨组织接近,而无需使用传统的perper支架。

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