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A Biological 3D Printer for the Preparation of Tissue Engineering Micro-channel Scaffold

机译:用于制备组织工程微通道支架的生物3D打印机

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The clinical applications of tissue engineering are still limited by the lack of a functional vascular supply in tissue-engineered constructs. In order to improve the pre-vascularization of tissue-engineered scaffold during in vitro culture, in this study, based on three-dimensional (3D) printing technology, using the crosslinking effect of coaxial fluids (sodium alginate and CaCl_2) to prepare vessel-like hollow gel fibers, then layer by layer overlapping into 3D scaffold. The biological 3D printing platform was successfully developed and a coaxial nozzle module was introduced to generate a CaCl2-in-Alginate coaxial microfluidic. The inner core diameters of the prepared hollow gel fibers were 220~380 micrometers. In addition, the influence of materials concentration and dispensing rates on hollow fiber dimension were investigated, the cell-encapsulated in the printed hollow fibers was realized and the viability of endothelial cells (ECs) was studied with Laser scanning confocal microscopy (LSCM) and Live-Dead cell staining. The 3D scaffold built by hollow fibers could improve the phenomenon of diffusion constrain and enhance the survival rate of those ECs growing at a greater depth in the construct. This study provides a new theoretical basis for the vascularization of bone scaffold.
机译:组织工程的临床应用仍然受到组织工程构建体中缺乏功能性血管供应的限制。为了在体外培养过程中改善组织工程支架的预血管形成,在本研究中,基于三维(3D)印刷技术,使用同轴流体(藻酸钠和CaCl_2)的交联效应制备血管 - 像空心凝胶纤维,然后层通过层重叠成3d支架。成功开发了生物3D印刷平台,并引入了同轴喷嘴模块以产生CaCl2-藻酸盐的同轴微流体。制备的中空凝胶纤维的内芯直径为220〜380微米。此外,研究了材料浓度和分配速率对中空纤维尺寸的影响,实现了印刷中空纤维中的细胞包封,并用激光扫描共焦显微镜(LSCM)研究了内皮细胞(ECS)的生存力-dead细胞染色。由中空纤维构建的3D支架可以改善扩散约束的现象,并提高在构建体中更大深度生长的ECS的存活率。本研究为骨脚手架的血管化提供了一种新的理论基础。

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