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Extrusion-based 3D bioprinting of alginate-based tissue constructs

机译:基于挤出的藻酸盐基组织构建体的3D生物监测

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Tissues engineering technology led to the development of biomedical scaffolds which are mainly used to biofabricate different artificial human organs. Bioprinting is a direct method to fabricate tissue constructs that can support cell growth. The development and formation of bioinks for 3D bioprinting is always considered as a challenge in the field of biofabrication and tissue engineering. Numerous hydrogels have been discovered to solve the problem of bioinks. An appropriate hydrogel used as bioink should have numerous properties for building scaffolds and tissue constructs. A blend of appropriate rheological and mechanical properties is desired. This paper presents comparisons of different hydrogels, their crosslinking mechanisms, an experimental procedure to investigate best proportions of alginate-based hydrogel and crosslinking solution and mathematical model to predict the process parameters of the extrusion-based 3D bioprinting process. The mathematical model gives the reader values of process parameters like average velocity, pressure ranges to obtain a definite geometry of the construct, and shear stress developed for cell viability prediction. The trials were taken using sodium alginate and cross-linking agent as calcium lactate. The process variables considered to design the experiments were nozzle diameter, pressure range, concentration of sodium alginate and concentration of crosslinking solution. The tissue constructs were evaluated based on their geometry (non-continuous, stable, aggregating and over-flowing) and increase in print area. The mathematical model used the rheological data to find out the shear thinning behavior of different concentrations of bioinks. The experimental data and theoretical data obtained from mathematical model were merged to speculate the printability of sodium alginate when used as a bioink. Taken together, these assessment techniques revealed significant insights into the requirements for printable inks and shear conditions present during the extrusion process and allow the rapid and reproducible characterization of a wide variety of inks for 3D bioprinting.
机译:组织工程技术导致生物医​​学支架的发展,主要用于生物借用不同人造人工机构。 BioPlinting是一种制造可支持细胞生长的组织构建体的直接方法。用于3D生物制品的生物链接的发展和形成总是被认为是生物制造和组织工程领域的挑战。已经发现许多水凝胶来解决生物链的问题。用作生物链的合适的水凝胶应具有许多用于构建支架和组织构建体的性质。期望适当流变和机械性能的混合物。本文呈现了不同水凝胶的比较,其交联机制,研究了藻酸盐基水凝胶和交联溶液的最佳比例和数学模型的实验程序,以预测基于挤出的3D生物监测过程的过程参数。数学模型给出了平均速度等平均速度,压力范围的过程参数的读取器值,以获得构造的明确几何形状,并且为细胞活力预测开发的剪切应力。试验使用藻酸钠和交联剂作为乳酸钙进行。考虑设计实验的过程变量是喷嘴直径,压力范围,藻酸钠浓度和交联溶液的浓度。基于其几何形状(非连续,稳定,聚集和过流)和打印区域增加来评估组织构建体。数学模型使用流变数据来了解不同浓度的生物链的剪切变薄行为。从数学模型获得的实验数据和理论数据被合并以推测藻酸钠在用作生物链中的可印刷性。在一起,这些评估技术揭示了对挤出过程中可打印油墨和剪切条件的要求的显着见解,并允许对3D生物印刷的各种油墨进行快速和可再现的表征。

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