Department of Chemical Engineering , McMaster University , 1280 Main Street West , Hamilton , Ontario L8S 4L8 , Canada.
Biomacromolecules. 2018 Nov 12;19(11):4182-4192. doi: 10.1021/acs.biomac.8b00770. Epub 2018 Oct 2.
A reactive electrospinning strategy is used to fabricate viable and proliferative cell-loaded nanofibrous hydrogel scaffolds in a single step using an all-aqueous approach. In situ gelling and degradable hydrazone-cross-linked poly(oligo ethylene glycol methacrylate)-based hydrogel nanofibrous networks can be produced directly in the presence of cells to support long-term cell viability, adhesion, and proliferation, in contrast to bulk hydrogels of the same composition. Furthermore, the capacity of the gel nanofibers to retain bound water maintains this high cell viability and proliferative capacity following a freeze/thaw cycle without requiring any cryoprotectant additives, ideal properties for ready-to-use functional tissue patches.
采用反应性静电纺丝策略,使用全水相方法一步法制备具有生物活性和增殖性的细胞负载纳米纤维水凝胶支架。在细胞存在的情况下,可以直接产生原位凝胶和可降解腙交联的聚(低聚乙二醇甲基丙烯酸酯)基水凝胶纳米纤维网络,与相同组成的块状水凝胶相比,可支持长期的细胞活力、黏附和增殖。此外,凝胶纳米纤维保留结合水的能力可在无需任何冷冻保护剂添加剂的情况下,在冻融循环后保持高细胞活力和增殖能力,这是用于即用型功能组织贴片的理想特性。