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Tuning Alginate Bioink Stiffness and Composition for Controlled Growth Factor Delivery and to Spatially Direct MSC Fate within Bioprinted Tissues

机译:调整藻酸盐生物墨水的刚度和组成以控制生长因子的传递并在生物打印的组织中空间定向MSC的命运

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摘要

Alginate is a commonly used bioink in 3D bioprinting. Matrix stiffness is a key determinant of mesenchymal stem cell (MSC) differentiation, suggesting that modulation of alginate bioink mechanical properties represents a promising strategy to spatially regulate MSC fate within bioprinted tissues. In this study, we define a printability window for alginate of differing molecular weight (MW) by systematically varying the ratio of alginate to ionic crosslinker within the bioink. We demonstrate that the MW of such alginate bioinks, as well as the choice of ionic crosslinker, can be tuned to control the mechanical properties (Young’s Modulus, Degradation Rate) of 3D printed constructs. These same factors are also shown to influence growth factor release from the bioinks. We next explored if spatially modulating the stiffness of 3D bioprinted hydrogels could be used to direct MSC fate inside printed tissues. Using the same alginate and crosslinker, but varying the crosslinking ratio, it is possible to bioprint constructs with spatially varying mechanical microenvironments. Moreover, these spatially varying microenvironments were found to have a significant effect on the fate of MSCs within the alginate bioinks, with stiffer regions of the bioprinted construct preferentially supporting osteogenesis over adipogenesis.
机译:海藻酸盐是3D生物打印中常用的生物墨水。基质刚度是间充质干细胞(MSC)分化的关键决定因素,表明藻酸盐生物墨水机械性能的调节代表了一种有前途的策略,可在空间上调节生物打印组织中的MSC命运。在这项研究中,我们通过系统地改变生物墨水中藻酸盐与离子交联剂的比例,为不同分子量(MW)的藻酸盐定义了可印刷性窗口。我们证明了可以调整此类藻酸盐生物油墨的MW以及离子交联剂的选择,以控制3D打印结构的机械性能(杨氏模量,降解率)。还显示了这些相同的因素会影响生物墨水中生长因子的释放。接下来,我们探讨了在空间上调节3D生物打印水凝胶的刚度是否可用于指导MSC在打印组织内的命运。使用相同的藻酸盐和交联剂,但改变交联比例,可以对具有空间变化的机械微环境的构建体进行生物印刷。此外,发现这些空间变化的微环境对藻酸盐生物油墨内的MSC的命运具有显着影响,其中生物印刷构造的较硬区域优先于成骨作用而支持成骨作用。

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