The corticospinal tract structure of collagen/silk fibroin scaffold implants using 3D printing promotes functional recovery after complete spinal cord transection in rats

丝素 脚手架 皮质脊髓束 再生(生物学) 脊髓 解剖 Gap-43蛋白 轴突 锥体束 脊髓损伤 生物医学工程 化学 材料科学 医学 丝绸 磁共振成像 生物 病理 神经科学 细胞生物学 免疫组织化学 复合材料 磁共振弥散成像 放射科
作者
Xiaohong Li,Xuan Zhu,Xiao‐Yin Liu,Haonan Xu,Wei Jiang,Jingjing Wang,Chi Feng,Sai Zhang,Ruixin Li,Xuyi Chen,Yue Tu
出处
期刊:Journal of Materials Science: Materials in Medicine [Springer Science+Business Media]
卷期号:32 (4) 被引量:17
标识
DOI:10.1007/s10856-021-06500-2
摘要

No effective treatment has been established for nerve dysfunction caused by spinal cord injury (SCI). Orderly axonal growth at the site of spinal cord transection and creation of an appropriate biological microenvironment are important for functional recovery. To axially guiding axonal growth, designing a collagen/silk fibroin scaffold fabricated with 3D printing technology (3D-C/SF) emulated the corticospinal tract. The normal collagen/silk fibroin scaffold with freeze-drying technology (C/SF) or 3D-C/SF scaffold were implanted into rats with completely transected SCI to evaluate its effect on nerve repair during an 8-week observation period. Electrophysiological analysis and locomotor performance showed that the 3D-C/SF implants contributed to significant improvements in the neurogolical function of rats compared to C/SF group. By magnetic resonance imaging, 3D-C/SF implants promoted a striking degree of axonal regeneration and connection between the proximal and distal SCI sites. Compared with C/SF group, rats with 3D-C/SF scaffold exhibited fewer lesions and disordered structures in histological analysis and more GAP43-positive profiles at the lesion site. The above results indicated that the corticospinal tract structure of 3D printing collagen/silk fibroin scaffold improved axonal regeneration and promoted orderly connections within the neural network, which could provided a promising and innovative approach for tissue repair after SCI.

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