Department of Mechanical Engineering, Iowa State University, Ames, IA, 50011, USA.
Department of Mechanical Engineering, Stanford University, Stanford, CA, 94305, USA.
Adv Healthc Mater. 2022 Jun;11(11):e2102701. doi: 10.1002/adhm.202102701. Epub 2022 Feb 16.
Mimicking microvascular tissue microenvironment in vitro calls for a cytocompatible technique of manufacturing biocompatible hollow microfibers suitable for cell-encapsulation/seeding in and around them. The techniques reported to date either have a limit on the microfiber dimensions or undergo a complex manufacturing process. Here, a microfluidic-based method for cell seeding inside alginate hollow microfibers is designed whereby mouse astrocytes (C8-D1A) are passively seeded on the inner surface of these hollow microfibers. Collagen I and poly-d-lysine, as cell attachment additives, are tested to assess cell adhesion and viability; the results are compared with nonadditive-based hollow microfibers (BARE). The BARE furnishes better cell attachment and higher cell viability immediately after manufacturing, and an increasing trend in the cell viability is observed between Day 0 and Day 2. Swelling analysis using percentage initial weight and width is performed on BARE microfibers furnishing a maximum of 124.1% and 106.1%, respectively. Degradation analysis using weight observed a 62% loss after 3 days, with 46% occurring in the first 12 h. In the frequency sweep test performed, the storage modulus (G') remains comparatively higher than the loss modulus (G″) in the frequency range 0-20 Hz, indicating high elastic behavior of the hollow microfibers.
在体外模拟微血管组织微环境需要一种细胞相容性的制造技术,以制造适合细胞包封/接种的生物相容性中空微纤维。迄今为止报道的技术要么对微纤维尺寸有限制,要么经历复杂的制造过程。在这里,设计了一种基于微流控的方法,用于将细胞被动接种到海藻酸盐中空微纤维内部,其中将小鼠星形胶质细胞(C8-D1A)被动接种到这些中空微纤维的内表面。测试了胶原 I 和聚-d-赖氨酸作为细胞附着添加剂,以评估细胞粘附和活力;结果与无添加剂的中空微纤维(BARE)进行了比较。BARE 提供了更好的细胞附着和更高的细胞活力,在制造后立即观察到细胞活力呈上升趋势,从第 0 天到第 2 天。对 BARE 微纤维进行初始重量和宽度百分比的溶胀分析,分别提供最大的 124.1%和 106.1%。使用重量进行的降解分析在 3 天后观察到 62%的损失,其中 46%在前 12 小时内发生。在进行的频率扫描测试中,在 0-20 Hz 的频率范围内,储能模量(G')保持相对高于损耗模量(G″),表明中空微纤维具有高弹性行为。