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首页> 外文期刊>Tissue engineering, Part C. Methods >Cartilage Tissue Engineering: Preventing Tissue Scaffold Contraction Using a 3D-Printed Polymeric Cage
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Cartilage Tissue Engineering: Preventing Tissue Scaffold Contraction Using a 3D-Printed Polymeric Cage

机译:软骨组织工程:使用3D打印的聚合笼防止组织支架收缩

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摘要

Scaffold contraction is a common but underestimated problem in the field of tissue engineering. It becomes particularly problematic when creating anatomically complex shapes such as the ear. The aim of this study was to develop a contraction-free biocompatible scaffold construct for ear cartilage tissue engineering. To address this aim, we used three constructs: (i) a fibrin/hyaluronic acid (FB/HA) hydrogel, (ii) a FB/HA hydrogel combined with a collagen I/III scaffold, and (iii) a cage construct containing (ii) surrounded by a 3D-printed poly-e-caprolactone mold. A wide range of different cell types were tested within these constructs, including chondrocytes, perichondrocytes, adipose-derived mesenchymal stem cells, and their combinations. After in vitro culturing for 1, 14, and 28 days, all constructs were analyzed. Macroscopic observation showed severe contraction of the cell-seeded hydrogel (i). This could be prevented, in part, by combining the hydrogel with the collagen scaffold (ii) and prevented in total using the 3D-printed cage construct (iii). (Immuno) histological analysis, multiphoton laser scanning microscopy, and biomechanical analysis showed extracellular matrix deposition and increased Young's modulus and thereby the feasibility of ear cartilage engineering. These results demonstrated that the 3D-printed cage construct is an adequate model for contraction-free ear cartilage engineering using a range of cell combinations.
机译:支架收缩是组织工程领域中常见但被低估的问题。当创建解剖学上复杂的形状(例如耳朵)时,这尤其成问题。这项研究的目的是开发一种用于耳软骨组织工程的无收缩生物相容性支架构建体。为了实现这一目标,我们使用了三种构建体:(i)纤维蛋白/透明质酸(FB / HA)水凝胶,(ii)结合了胶原蛋白I / III支架的FB / HA水凝胶,以及(iii)含有(ii)被3D打印的聚己内酯模具包围。在这些构建体中测试了各种不同的细胞类型,包括软骨细胞,软骨膜细胞,脂肪来源的间充质干细胞及其组合。在体外培养1、14和28天后,分析所有构建体。肉眼观察表明,接种细胞的水凝胶严重收缩(i)。这可以部分地通过将水凝胶与胶原蛋白支架结合(ii)来预防,并且可以使用3D打印的笼式构造(iii)完全防止。 (免疫)组织学分析,多光子激光扫描显微镜和生物力学分析显示细胞外基质沉积和增加的杨氏模量,从而实现了耳软骨工程的可行性。这些结果表明,使用3D打印的笼构建体是使用一系列细胞组合进行无收缩耳软骨工程改造的合适模型。

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