酶交联明胶-层粘连蛋白水凝胶在神经肌肉组织工程中的应用

Rachel R. Besser, Annie C. Bowles, Ahmad Alassaf, Daniel Carbonero, Isabella Claure, Ellery Jones, Joseph Reda, Laura Wubker, W. Batchelor, N. Ziebarth, R. Silvera, Aisha Khan, Renata Maciel, Mario Saporta, A. Agarwal
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引用次数: 27

摘要

我们报告了一种水溶性和无毒的方法,将额外的细胞外基质蛋白加入明胶水凝胶中,同时避免使用化学交联剂,如戊二醛。明胶水凝胶的制备使用明胶浓度范围(4%-10%),分别对应于大约1 kPa-25 kPa的弹性模量,这是与多种细胞类型相关的底物刚度。然后用微生物转谷氨酰胺酶在明胶水凝胶上酶促交联一层层粘连蛋白,得到双组分明胶-层粘连蛋白水凝胶。人诱导多能干细胞衍生的脊髓球体在凝胶- ln水凝胶上容易粘附并迅速延伸轴突。与对照组相比,凝胶- ln水凝胶的轴突表现出更成熟的形态和更好的电生理特性。雪旺细胞在凝胶- ln水凝胶上粘附、增殖正常,形态健康,并保持雪旺细胞特异性标志物的表达。最后,在凝胶- ln水凝胶上的骨骼肌细胞实现了长达28天的无分层长期培养,同时表达更高水平的终端基因,包括肌球蛋白重链、MyoD、MuSK和m -钙粘蛋白,这表明与对照组相比,成熟潜力和肌管形成增强。未来的研究将利用这种杂交基质的优良培养结果,在芯片上应用于工程功能神经肌肉连接和相关器官。
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Enzymatically Crosslinked Gelatin-Laminin Hydrogels for Applications in Neuromuscular Tissue Engineering
We report a water-soluble and non-toxic method to incorporate additional extracellular matrix proteins into gelatin hydrogels, while obviating the use of chemical crosslinkers such as glutaraldehyde. Gelatin hydrogels were fabricated using a range of gelatin concentrations (4%-10%) that corresponded to elastic moduli of approximately 1 kPa-25 kPa, respectively, a substrate stiffness relevant for multiple cell types. Microbial transglutaminase was then used to enzymatically crosslink a layer of laminin on top of gelatin hydrogels, resulting in 2-component gelatin-laminin hydrogels. Human induced pluripotent stem cell derived spinal spheroids readily adhered and rapidly extended axons on GEL-LN hydrogels. Axons displayed a more mature morphology and superior electrophysiological properties on GEL-LN hydrogels compared to the controls. Schwann cells on GEL-LN hydrogels adhered and proliferated normally, displayed a healthy morphology, and maintained the expression of Schwann cell specific markers. Lastly, skeletal muscle cells on GEL-LN hydrogels achieved long-term culture for up to 28 days without delamination, while expressing higher levels of terminal genes including myosin heavy chain, MyoD, MuSK, and M-cadherin suggesting enhanced maturation potential and myotube formation compared to the controls. Future studies will employ the superior culture outcomes of this hybrid substrate for engineering functional neuromuscular junctions and related organ on a chip applications.
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