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Coaxial additive manufacture of biomaterial composite scaffolds for tissue engineering

机译:用于组织工程的生物材料复合支架的同轴增材制造

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An inherent difficulty associated with the application of suitable bioscaffolds for tissue engineering is the incorporation of adequate mechanical characteristics into the materials which recapitulate that of the native tissue, whilst maintaining cell proliferation and nutrient transfer qualities. Biomaterial composites fabricated using rapid prototyping techniques can potentially improve the functionality and patient-specific processing of tissue engineering scaffolds. In this work, a technique for the coaxial melt extrusion printing of core-shell scaffold structures was designed, implemented and assessed with respect to the repeatability, cell efficacy and scaffold porosity obtainable. Encapsulated alginate hydrogel/thermoplastic polycaprolactone (Alg-PCL) cofibre scaffolds were fabricated. Selective laser melting was used to produce a high resolution stainless steel 316 L coaxial extrusion nozzle, exhibiting diameters of 300 μm/900 μm for the inner and outer nozzles respectively. We present coaxial melt extrusion printed scaffolds of Alg-PCL cofibres with ~0.4 volume fraction alginate, with total fibre diameter as low as 600 μm and core material offset as low as 10% of the total diameter. Furthermore the tuneability of scaffold porosity, pore size and interconnectivity, as well as the preliminary inclusion, compatibility and survival of an L-929 mouse fibroblast cell-line within the scaffolds were explored. This preliminary cell work highlighted the need for optimal material selection and further design reiteration in future research.
机译:与将合适的生物支架应用于组织工程相关的固有困难是将足够的机械特性结合到材料中,该材料可概括天然组织的特性,同时保持细胞增殖和营养转移质量。使用快速原型技术制造的生物材料复合物可以潜在地改善组织工程支架的功能和针对患者的加工。在这项工作中,针对可获得的可重复性,细胞功效和支架孔隙率,设计,实施和评估了核-壳支架结构的同轴熔融挤出印刷技术。制备了封装的藻酸盐水凝胶/热塑性聚己内酯(Alg-PCL)cofibre支架。选择性激光熔化用于生产高分辨率不锈钢316 L同轴挤压喷嘴,内喷嘴和外喷嘴的直径分别为300μm/ 900μm。我们提出了Alg-PCL纤维的同轴熔融挤出印刷支架,藻酸酯含量约为0.4%,总纤维直径低至600μm,芯材偏移低至总直径的10%。此外,还研究了支架孔隙率,孔径和互连性的可调节性,以及支架中L-929小鼠成纤维细胞系的初步包含性,相容性和存活率。这项初步的电池工作突显了在未来研究中需要最佳材料选择和进一步的设计重申的必要性。

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