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Evaluation of Cell Viability and Functionality in Vessel-like Bioprintable Cell-Laden Tubular Channels

机译:血管样生物可打印细胞载管通道中细胞活力和功能的评估。

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Organ printing is a novel concept recently introduced in developing artificial three-dimensional organs to bridge the gap between transplantation needs and organ shortage. One of the major challenges is inclusion of blood-vessellike channels between layers to support cell viability, postprinting functionality in terms of nutrient transport, and waste removal. In this research, we developed a novel and effective method to print tubular channels encapsulating cells in alginate to mimic the natural vascular system. An experimental investigation into the influence on cartilage progenitor cell (CPCs) survival, and the function of printing parameters during and after the printing process were presented. CPC functionality was evaluated by checking tissue-specific genetic marker expression and extracellular matrix production. Our results demonstrated the capability of direct fabrication of cell-laden tubular channels by our newly designed coaxial nozzle assembly and revealed that the bioprinting process could induce quantifiable cell death due to changes in dispensing pressure, coaxial nozzle geometry, and biomaterial concentration. Cells were able to recover during incubation, as well as to undergo differentiation with high-level cartilage-associated gene expression. These findings may not only help optimize our system but also can be applied to biomanufacturing of 3D functional cellular tissue engineering constructs for various organ systems.
机译:器官打印是最近在开发人造三维器官中引入的新概念,以弥合移植需求和器官短缺之间的差距。主要挑战之一是在各层之间包含类似血管的通道以支持细胞生存力,就营养物质运输而言的后印刷功能以及废物清除。在这项研究中,我们开发了一种新颖有效的方法来打印管状通道,将通道封装在藻酸盐中以模仿天然血管系统。实验研究了对软骨祖细胞(CPC)生存的影响,以及在打印过程中和打印过程后打印参数的功能。通过检查组织特异性遗传标记表达和细胞外基质产生来评估CPC功能。我们的结果证明了通过我们新设计的同轴喷嘴组件可以直接制造载有细胞的管状通道的能力,并表明由于分配压力,同轴喷嘴几何形状和生物材料浓度的变化,生物打印过程可能导致可量化的细胞死亡。细胞能够在孵育过程中恢复,并能够通过与软骨相关的高水平基因表达进行分化。这些发现不仅可以帮助优化我们的系统,还可以应用于各种器官系统的3D功能性细胞组织工程构建体的生物制造。

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