Department of Biomedical Engineering, University of Michigan, 2200 Bonisteel Blvd, Ann Arbor, MI, 48109, USA.
Neuroscience Graduate Program, University of Michigan Medical School, 204 Washtenaw Ave, Ann Arbor, MI, 48109, USA.
Adv Healthc Mater. 2024 Oct;13(25):e2302498. doi: 10.1002/adhm.202302498. Epub 2023 Oct 5.
Spinal cord injury (SCI) is a life-altering event, which often results in loss of sensory and motor function below the level of trauma. Biomaterial therapies have been widely investigated in SCI to promote directional regeneration but are often limited by their pre-constructed size and shape. Herein, the design parameters of microporous annealed particles (MAPs) are investigated with tubular geometries that conform to the injury and direct axons across the defect to support functional recovery. MAP tubes prepared from 20-, 40-, and 60-micron polyethylene glycol (PEG) beads are generated and implanted in a T9-10 murine hemisection model of SCI. Tubes attenuate glial and fibrotic scarring, increase innate immune cell density, and reduce inflammatory phenotypes in a bead size-dependent manner. Tubes composed of 60-micron beads increase the cell density of the chronic macrophage response, while neutrophil infiltration and phenotypes do not deviate from those seen in controls. At 8 weeks postinjury, implantation of tubes composed of 60-micron beads results in enhanced locomotor function, robust axonal ingrowth, and remyelination through both lumens and the inter-tube space. Collectively, these studies demonstrate the importance of bead size in MAP construction and highlight PEG tubes as a biomaterial therapy to promote regeneration and functional recovery in SCI.
脊髓损伤 (SCI) 是改变生活的事件,通常会导致创伤以下水平的感觉和运动功能丧失。生物材料疗法已广泛应用于 SCI 中,以促进定向再生,但通常受到其预先构建的大小和形状的限制。在此,研究了具有管状几何形状的微孔退火颗粒 (MAP) 的设计参数,这些几何形状与损伤相符,并引导轴突穿过缺陷,以支持功能恢复。从 20-、40-和 60-微米的聚乙二醇 (PEG) 珠制备的 MAP 管,并植入 SCI 的 T9-10 鼠半切模型中。管状物以珠粒尺寸依赖性的方式减轻神经胶质和纤维瘢痕形成,增加固有免疫细胞密度,并减少炎症表型。由 60 微米珠粒组成的管状物增加了慢性巨噬细胞反应的细胞密度,而中性粒细胞浸润和表型与对照中所见没有差异。在损伤后 8 周,植入由 60 微米珠粒组成的管状物可增强运动功能,通过管腔和管间空间促进大量轴突内生长和髓鞘形成。总之,这些研究表明珠粒大小在 MAP 构建中的重要性,并强调 PEG 管作为一种生物材料疗法,可促进 SCI 中的再生和功能恢复。