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Proposal to assess printability of bioinks for extrusion-based bioprinting and evaluation of rheological properties governing bioprintability

机译:评估基于挤出的生物挤出性的生物链的可印刷性的提议和控制生物可燃性的流变性能评价

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The development and formulation of printable inks for extrusion-based 3D bioprinting has been a major challenge in the field of biofabrication. Inks, often polymer solutions with the addition of crosslinking to form hydrogels, must not only display adequate mechanical properties for the chosen application but also show high biocompatibility as well as printability. Here we describe a reproducible two-step method for the assessment of the printability of inks for bioprinting, focussing firstly on screening ink formulations to assess fibre formation and the ability to form 3D constructs before presenting a method for the rheological evaluation of inks to characterise the yield point, shear thinning and recovery behaviour. In conjunction, a mathematical model was formulated to provide a theoretical understanding of the pressure-driven, shear thinning extrusion of inks through needles in a bioprinter. The assessment methods were trialled with a commercially available creme, poloxamer 407, alginate-based inks and an alginate-gelatine composite material. Yield stress was investigated by applying a stress ramp to a number of inks, which demonstrated the necessity of high yield for printable materials. The shear thinning behaviour of the inks was then characterised by quantifying the degree of shear thinning and using the mathematical model to predict the window of printer operating parameters in which the materials could be printed. Furthermore, the model predicted high shear conditions and high residence times for cells at the walls of the needle and effects on cytocompatibility at different printing conditions. Finally, the ability of the materials to recover to their original viscosity after extrusion was examined using rotational recovery rheological measurements. 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 characterisation of a wide variety of inks for bioprinting.
机译:用于挤出基于3D生物监测的可印刷油墨的开发和制剂在生物制造领域是一项主要挑战。油墨通常具有添加交联以形成水凝胶的聚合物溶液,不仅必须为所选择的应用显示足够的机械性能,而且还显示出高生物相容性以及可印刷性。在这里,我们描述了一种可重复的两步方法,用于评估墨水的墨水的可印刷性,首先在筛选油墨制剂上,以评估纤维形成和形成3D构建体的能力,然后在呈现油墨的流变评估方法之前形成3D构建体。屈服点,剪切变薄和恢复行为。结合,配制了数学模型,以提供一种理论上通过生物炉中通过针的压力驱动的剪切稀释挤压油墨的理论认识。使用市售的克雷莫,泊洛沙姆407,藻酸盐基油墨和藻酸盐 - 明胶复合材料进行试验。通过将应力斜坡施加到许多油墨来研究屈服应力,这证明了可印刷材料的高产率的必要性。然后,通过量化剪切变薄程度并使用数学模型来预测可以打印材料的打印机操作参数窗口来表征油墨的剪切稀疏行为。此外,该模型预测针壁的细胞的高剪切条件和高停留时间,以及对不同印刷条件下的细胞相容性的影响。最后,使用旋转回收流变测量检查挤出后,材料在挤出后恢复其原始粘度的能力。总之,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,并允许对生物印刷的各种油墨进行快速和可再现的表征。

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