离子交联生物墨水同轴生物打印泡沫基支撑材料的研制

Q1 Computer Science
E. Madadian , S. Badr , D.S. MacDonald , R.A. Tasker , A. Ahmadi
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引用次数: 1

摘要

在这项研究中,开发了一种基于泡沫的离子交联生物墨水三维同轴生物打印方法。该方法将交联剂引入到氯化钙-白蛋白泡沫生物链接中,消除了多次交联步骤的需要,并提供了对交联速率和中空纤维直径的良好控制。考察了泡沫和海藻酸盐流速对中空纤维外径和壁厚的影响。3D打印了各种结构,并对其进行了可打印性表征,该方法在打印层之间表现出良好的层粘附性。通过断裂应变和纤维坍塌试验,考察了泡沫组成和海藻酸盐浓度对中空纤维力学性能的影响,确定了中空纤维的最佳组成。由2% (w/v)海藻酸钠组成的中空纤维与1.07% (w/v)白蛋白和1.07% (w/v)氯化钙制成的泡沫交联,具有优异的力学性能。此外,研究了与神经-2a细胞共孵育7天的活力,并没有观察到白蛋白和氯化钙浓度对细胞活力的显著负面影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Development of foam-based support material for coaxial bioprinting of ionically crosslinking bioinks

In this study, a foam-based method is developed for three-dimensional coaxial bioprinting of ionically crosslinking bioinks. This method introduces the crosslinker to the bioink in calcium chloride-albumin foam which eliminates the need for multiple crosslinking steps and offers an excellent control over the crosslinking rate and the diameter of the hollow fibers. The effects of the foam and alginate flow rates were investigated on the outer diameter and the wall thickness of the hollow fibers. Various structures were 3D printed and characterized by printability number and the method showed an excellent layer adhesion among printed layers. The effects of foam composition and the alginate concentration on the mechanical properties were assessed through breaking strain and filament collapse tests to determine the optimum composition for hollow fiber fabrication. The hollow fiber composed of 2% (w/v) sodium alginate that is crosslinked with a foam made of 1.07% (w/v) albumin and 1.07% (w/v) calcium chloride showed superior mechanical properties. Furthermore, the viability of co-incubation with Neuro-2a cells over seven days was investigated and no significant negative effect of the used concentrations of albumin and calcium chloride was observed on the viability of the cells.

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来源期刊
Bioprinting
Bioprinting Computer Science-Computer Science Applications
CiteScore
11.50
自引率
0.00%
发文量
72
审稿时长
68 days
期刊介绍: Bioprinting is a broad-spectrum, multidisciplinary journal that covers all aspects of 3D fabrication technology involving biological tissues, organs and cells for medical and biotechnology applications. Topics covered include nanomaterials, biomaterials, scaffolds, 3D printing technology, imaging and CAD/CAM software and hardware, post-printing bioreactor maturation, cell and biological factor patterning, biofabrication, tissue engineering and other applications of 3D bioprinting technology. Bioprinting publishes research reports describing novel results with high clinical significance in all areas of 3D bioprinting research. Bioprinting issues contain a wide variety of review and analysis articles covering topics relevant to 3D bioprinting ranging from basic biological, material and technical advances to pre-clinical and clinical applications of 3D bioprinting.
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