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通过包埋在藻酸盐模板、双交联丝素和丝素-明胶复合水凝胶微球中来实现人源祖细胞和干细胞的细胞保护作用。

Cytoprotection of Human Progenitor and Stem Cells through Encapsulation in Alginate Templated, Dual Crosslinked Silk and Silk-Gelatin Composite Hydrogel Microbeads.

机构信息

Department of Biomedical Engineering, Tufts University, 4 Colby Street, Medford, MA, 02155, USA.

Department of Physics and Astronomy, Tufts University, Medford, MA, 02155, USA.

出版信息

Adv Healthc Mater. 2022 Sep;11(17):e2200293. doi: 10.1002/adhm.202200293. Epub 2022 Jun 22.

Abstract

Susceptibility of mammalian cells against harsh processing conditions limit their use in cell transplantation and tissue engineering applications. Besides modulation of the cell microenvironment, encapsulation of mammalian cells within hydrogel microbeads attract attention for cytoprotection through physical isolation of the encapsulated cells. The hydrogel formulations used for cell microencapsulation are largely dominated by ionically crosslinked alginate (Alg), which suffer from low structural stability under physiological culture conditions and poor cell-matrix interactions. Here the fabrication of Alg templated silk and silk/gelatin composite hydrogel microspheres with permanent or on-demand cleavable enzymatic crosslinks using simple and cost-effective centrifugation-based droplet processing are demonstrated. The composite microbeads display structural stability under ion exchange conditions with improved mechanical properties compared to ionically crosslinked Alg microspheres. Human mesenchymal stem and neural progenitor cells are successfully encapsulated in the composite beads and protected against environmental factors, including exposure to polycations, extracellular acidosis, apoptotic cytokines, ultraviolet (UV) irradiation, anoikis, immune recognition, and particularly mechanical stress. The microbeads preserve viability, growth, and differentiation of encapsulated stem and progenitor cells after extrusion in viscous polyethylene oxide solution through a 27-gauge fine needle, suggesting potential applications in injection-based delivery and three-dimensional bioprinting of mammalian cells with higher success rates.

摘要

哺乳动物细胞对恶劣加工条件的敏感性限制了它们在细胞移植和组织工程应用中的使用。除了调节细胞微环境外,通过将哺乳动物细胞封装在水凝胶微珠中实现物理隔离来实现细胞保护,这也引起了人们的关注。用于细胞微封装的水凝胶配方主要由离子交联的海藻酸盐(Alg)主导,在生理培养条件下,Alg 的结构稳定性差,与细胞基质的相互作用也差。本研究使用简单且经济高效的基于离心的液滴处理方法,展示了具有永久性或按需可切割酶交联的 Alg 模板丝和丝/明胶复合水凝胶微球的制造。与离子交联的 Alg 微球相比,复合微球在离子交换条件下具有更好的结构稳定性和机械性能。成功地将人骨髓间充质干细胞和神经祖细胞封装在复合珠中,并防止其受到环境因素的影响,包括暴露于多聚阳离子、细胞外酸中毒、凋亡细胞因子、紫外线(UV)照射、失巢凋亡、免疫识别,特别是机械应激。微珠通过 27 号精细针头在粘性聚氧化乙烯溶液中挤出后,保留了封装的干细胞和祖细胞的活力、生长和分化,这表明它们在注射式递送和具有更高成功率的哺乳动物细胞三维生物打印方面具有潜在应用。

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