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Optimization of gelatin-alginate composite bioink printability using rheological parameters: a systematic approach

机译:使用流变参数的明胶 - 藻酸盐复合生物透明性的优化:一种系统方法

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摘要

Three-dimensional bioprinting has emerged as a promising technique in tissue engineering applications through the precise deposition of cells and biomaterials in a layer-by-layer fashion. However, the limited availability of hydrogel bioinks is frequently cited as a major issue for the advancement of cell-based extrusion bioprinting technologies. It is well known that highly viscous materials maintain their structure better, but also have decreased cell viability due to the higher forces which are required for extrusion. However, little is known about the effect of the two distinct components of dynamic modulus of viscoelastic materials, storage modulus (G') and loss modulus (G''), on the printability of hydrogel-based bioinks. Additionally, 'printability' has been poorly defined in the literature, mostly consisting of gross qualitative measures which do not allow for direct comparison of bioinks. This study developed a framework for evaluating printability and investigated the effect of dynamic modulus, including storage modulus (G'), loss modulus (G''), and loss tangent (G''/G') on the printing outcome. Gelatin and alginate as model hydrogels were mixed at various concentrations to obtain hydrogel formulations with a wide range of storage and loss moduli. These formulations were then evaluated for the quantitatively defined values of extrudability, extrusion uniformity, and structural integrity. For extrudability, increasing either the loss or storage modulus increased the pressure required to extrude the bioink. A mathematical model relating the G' and G'' to the required extrusion pressure was derived based on the data. A lower loss tangent was correlated with increased structural integrity while a higher loss tangent correlated with increased extrusion uniformity. Gelatin-alginate composite hydrogels with a loss tangent in the range of 0.25-0.45 exhibited an excellent compromise between structural integrity and extrusion uniformity. In addition to the characterization of a common bioink, the methodology introduced in this paper could also be used to evaluate the printability of other bioinks in the future.
机译:三维生物监测器通过在层逐方式时,通过精确地沉积细胞和生物材料的精确沉积,成为组织工程应用中的有希望的技术。然而,水凝胶生物链的有限可用性经常被认为是基于细胞的挤出生物监测技术的推进的主要问题。众所周知,高粘性材料更好地保持其结构,但由于挤出所需的力,电池活力也降低。然而,关于粘弹性材料,储存模量(G')和损耗模量(G')的动态模量的两个不同组分的影响几乎是众所周知的基于水凝胶的生长的印刷性。此外,“可印刷性”在文献中已经差异很差,主要包括不允许直接比较生物链接的总定性措施。本研究开发了一种用于评估可印刷性的框架,并研究了动态模量的影响,包括储存模量(G'),损耗模量(G'')和打印结果上的损耗切线(G''/ G')。将明胶和藻酸盐作为模型水凝胶以各种浓度混合,得到具有广泛储存和损失模量的水凝胶制剂。然后评价这些制剂用于定量定义的耐燃料,挤出均匀性和结构完整性。为了耐挤出性,增加损耗或储存模量增加了挤出生物链的压力。基于数据导出将G'和G'和G''相关的数学模型。较低损耗切线与结构完整性的增加相关,而具有增加的挤出均匀性相关的更高损失正切。在0.25-0.45的范围内具有损失切线的明胶 - 藻酸盐复合水凝胶在结构完整性和挤出均匀性之间表现出极好的折衷。除了普通生物链的表征之外,本文介绍的方法还可用于评估将来其他生物链接的可印刷性。

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