材料科学
透明质酸
星形胶质增生
再生(生物学)
神经干细胞
生物医学工程
祖细胞
神经炎症
神经细胞
控制释放
细胞
细胞生物学
干细胞
纳米技术
神经科学
中枢神经系统
炎症
生物
医学
免疫学
生物化学
解剖
作者
K. Hickey,Shannon M. Grassi,George R. Bjorklund,Fallon M. Fumasi,Jaimeson Veldhuizen,Amanda M. Witten,Mehdi Nikkhah,Julianne L. Holloway,Sarah E. Stabenfeldt
摘要
Delivery of therapeutic compounds via biomaterial systems has shown promise for tissue regeneration following central nervous system (CNS) injuries. Stromal cell-derived factor-1a (SDF-1a) modulates progenitor cell recruitment to neural injury sites and may contribute to neural repair. However, SDF-1a has a short half-life and requires a delivery system to both protect and sustain its release. Here, we sought to develop a drug delivery platform capable of releasing SDF-1a in a controlled fashion while minimizing inflammation. We used modified hyaluronic acid and microfluidics to generate monodisperse microgels. Characterization of these microgels included size, tunability, degradation, and controlled release properties. Finally, we delivered SDF-1a-loaded microgels to a mouse model of traumatic brain injury at 7 days post-injury and assessed their impact on neural progenitor cell recruitment and astrogliosis. The microfluidic system generated highly monodisperse microgels that successfully encapsulated a matrix metalloproteinase (MMP)-cleavable SDF-1a peptide and retained sensitivity to collagenase. Following intracortical injections, the microgels did not exacerbate the astrocytic response compared to saline injections; no significant difference was observed in neural progenitor cell migration patterns compared to controls. Therefore, we developed a biocompatible microgel system that is highly adaptable for biological delivery and may be utilized in brain/neural applications without exacerbating neuroinflammation.
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