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Employing PEG crosslinkers to optimize cell viability in gel phase bioinks and tailor post printing mechanical properties

机译:采用PEG交联剂在凝胶相生物链中优化细胞活力,并定制后印刷机械性能

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摘要

The field of 3D bioprinting has rapidly grown, yet the fundamental ability to manipulate material properties has been challenging with current bioink methods. Here, we change bioink properties using our PEG cross-linking (PEGX) bioink method with the objective of optimizing cell viability while retaining control of mechanical properties of the final bioprinted construct. First, we investigate cytocompatible, covalent cross-linking chemistries for bioink synthesis (e.g. Thiol Michael type addition and bioorthogonal inverse electron demand Diels-Alder reaction). We demonstrate these reactions are compatible with the bioink method, which results in high cell viability. The PEGX method is then exploited to optimize extruded cell viability by manipulating bioink gel robustness, characterized by mass flow rate. Below a critical point, cell viability linearly decreases with decreasing flow rates, but above this point, high viability is achieved. This work underscores the importance of building a foundational understanding of the relationships between extrudable bioink properties and cell health post-printing to more efficiently tune material properties for a variety of tissue and organ engineering applications. Finally, we also develop a post-printing, cell-friendly cross-linking strategy utilizing the same reactions used for synthesis. This secondary cross-linking leads to a range of mechanical properties relevant to soft tissue engineering as well as highly viable cell-laden gels stable for over one month in culture.
机译:3D BioPlinting的领域已迅速发展,但操作材料特性的基本能力一直挑战当前的生物链条方法。在这里,我们使用PEG交联(PEGX)生物链条方法改变生物链属性,其目的是优化细胞活力,同时保留最终生物印刷构建体的机械性能的控制。首先,我们研究了用于生物链接合成的细胞偶联,共价交联化学品(例如硫醇麦基尔类型加成和生物正交逆电子Diels-Alder反应)。我们证明了这些反应与生物链条方法相容,这导致高电平的活力。然后利用PEGX方法来通过操纵生物凝胶稳健性来优化挤出的细胞活力,其特征在于质量流量。低于临界点,细胞活力随着流速的降低线性降低,但在该点之上,实现了高可力性。这项工作强调了构建对挤出的生物克性能和细胞健康之间的关系的关系的重要性,以更有效地调整各种组织和器官工程应用的材料特性。最后,我们还开发了利用相同的合成反应的印刷后,细胞友好的交联策略。这种二次交联导致与软组织工程相关的一系列机械性能,以及高度可行的细胞含水凝胶在培养中超过一个月稳定。

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