Cell infiltration into a 3D electrospun fiber and hydrogel hybrid scaffold implanted in the brain.

Christopher J Rivet, Kun Zhou, Ryan J Gilbert, David I Finkelstein, John S Forsythe
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引用次数: 49

Abstract

Tissue engineering scaffolds are often designed without appropriate consideration for the translational potential of the material. Solid scaffolds implanted into central nervous system (CNS) tissue to promote regeneration may require tissue resection to accommodate implantation. Or alternatively, the solid scaffold may be cut or shaped to better fit an irregular injury geometry, but some features of the augmented scaffold may fail to integreate with surrounding tissue reducing regeneration potential. To create a biomaterial able to completely fill the irregular geometry of CNS injury and yet still provide sufficient cell migratory cues, an injectable, hybrid scaffold was created to present the physical architecture of electrospun fibers in an agarose/methylcellulose hydrogel. When injected into the rat striatum, infiltrating macrophages/microglia and resident astrocytes are able to locate the fibers and utilize their cues for migration into the hybrid matrix. Thus, hydrogels containing electrospun fibers may be an appropriate platform to encourage regeneration of the injured brain.

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细胞浸润到3D电纺丝纤维和水凝胶混合支架植入大脑。
组织工程支架的设计往往没有适当考虑材料的转化潜力。固体支架植入中枢神经系统(CNS)组织促进再生可能需要组织切除以适应植入。或者,实体支架可以被切割或塑造,以更好地适应不规则的损伤几何形状,但增强支架的某些特征可能无法与周围组织融合,从而降低再生潜力。为了创造一种能够完全填补中枢神经系统损伤的不规则几何形状,同时仍能提供足够的细胞迁移线索的生物材料,一种可注射的混合支架被创造出来,在琼脂糖/甲基纤维素水凝胶中呈现电纺丝纤维的物理结构。当注入大鼠纹状体时,浸润的巨噬细胞/小胶质细胞和驻留的星形胶质细胞能够定位纤维并利用它们的线索迁移到混合基质中。因此,含有电纺丝纤维的水凝胶可能是促进受伤大脑再生的合适平台。
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