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Microfluidic spinning of the fibrous alginate scaffolds for modulation of the degradation profile

机译:藻酸盐纤维支架的微流体纺丝可调节降解曲线

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摘要

In tissue engineering, alginate has been an attractive material due to its biocompatibility and ability to form hydrogels, unless its uncontrollable degradation could be an undesirable feature. Here, we developed a simple and easy method to tune the degradation profile of the fibrous alginate scaffolds by the microfluidic wet spinning techniques, according with the use of isopropyl alcohol for dense packing of alginate chains in the microfiber production and the increase of crosslinking with Ca2+ ion. The degradation profiling was analyzed by mass losses, swelling ratios, and also observation of the morphologic changes. The results demonstrated that high packing density might be provided by self-aggregation of polymer chains through high dipole interactions between sheath and core fluids and that the increase of crosslinking rates could make degradation of alginate scaffold controllable. We suggest that the tunable degradation of the alginate fibrous scaffolds may expand its utilities for biomedical applications such as drug delivery, in vitro cell culture, wound healing, tissue engineering and regenerative medicine.Electronic Supplementary MaterialSupplementary material is available for this article at 10.1007/s13770-016-9048-7 and is accessible for authorized users.
机译:在组织工程中,藻酸盐由于其生物相容性和形成水凝胶的能力而成为有吸引力的材料,除非其不可控制的降解可能是不希望的特征。在这里,我们开发了一种简单易用的方法,通过使用异丙醇在微纤维生产中藻酸盐链的密集堆积以及增加与Ca的交联,通过微流体湿纺技术来调节藻酸纤维状支架的降解特性。 2 + 离子。通过质量损失,溶胀率以及观察形态变化来分析降解曲线。结果表明,通过鞘液和芯液之间的高偶极相互作用,聚合物链的自聚集可提供高堆积密度,并且交联速率的增加可使藻酸盐支架的降解可控。我们建议藻酸盐纤维支架的可调节降解可能会扩展其在生物医学应用中的效用,例如药物递送,体外细胞培养,伤口愈合,组织工程和再生医学。电子补充材料本文提供的补充材料为10.1007 / s13770 -016-9048-7,可供授权用户访问。

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