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Hierarchically aligned fibrin nanofiber hydrogel accelerated axonal regrowth and locomotor function recovery in rat spinal cord injury

机译:分层排列的纤维蛋白纳米纤维水凝胶促进大鼠脊髓损伤中的轴突再生和运动功能恢复

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Background: Designing novel biomaterials that incorporate or mimic the functions of extracellular matrix to deliver precise regulatory signals for tissue regeneration is the focus of current intensive research efforts in tissue engineering and regenerative medicine. Methods and results: To mimic the natural environment of the spinal cord tissue, a three-dimensional hierarchically aligned fibrin hydrogel (AFG) with oriented topography and soft stiffness has been fabricated by electrospinning and a concurrent molecular self-assembling process. In this study, the AFG was implanted into a rat dorsal hemisected spinal cord injury model to bridge the lesion site. Host cells invaded promptly along the aligned fibrin hydrogels to form aligned tissue cables in the first week, and then were followed by axonal regrowth. At 4 weeks after the surgery, neurofilament (NF)-positive staining fibers were detected near the rostral end as well as the middle site of defect, which aligned along the tissue cables. Abundant NF- and GAP-43-positive staining indicated new axon regrowth in the oriented tissue cables, which penetrated throughout the lesion site in 8 weeks. Additionally, the abundant blood vessels marked with RECA-1 had reconstructed within the lesion site at 4 weeks after surgery. Basso-Beattie-Bresnahan scoring showed that the locomotor performance of the AFG group recovered much faster than that of blank control group or the random fibrin hydrogel (RFG) group from 2 weeks after surgery. Furthermore, diffusion tensor imaging tractography of MRI confirmed the optimal axon fiber reconstruction compared with the RFG and control groups. Conclusion: Taken together, our results suggested that the AFG scaffold provided an inductive matrix for accelerating directional host cell invasion, vascular system reconstruction, and axonal regrowth, which could promote and support extensive aligned axonal regrowth and locomotor function recovery.
机译:背景:设计新的生物材料,其结合或模仿细胞外基质的功能,以提供用于组织再生的精确调控信号,是当前在组织工程和再生医学领域的大量研究工作的重点。方法和结果:为了模拟脊髓组织的自然环境,通过静电纺丝和同时进行的分子自组装过程,制备了具有定向形貌和软硬度的三维层次排列的纤维蛋白水凝胶(AFG)。在这项研究中,AFG被植入到大鼠背侧半横断脊髓损伤模型中以桥接病变部位。在第一周内,宿主细胞迅速沿着排列的纤维蛋白水凝胶侵入以形成排列的组织电缆,然后轴突再生长。手术后第4周,在靠近鼻端和沿组织电缆排列的缺损中间部位检测到神经丝(NF)阳性染色纤维。大量的NF-和GAP-43阳性染色表明定向组织索中有新的轴突再生长,在8周内穿透了整个病变部位。另外,在手术后4周,在病变部位重建了标记有RECA-1的丰富血管。 Basso-Beattie-Bresnahan评分显示,AFG组的运动性能从术后2周开始恢复,比空白对照组或随机纤维蛋白水凝胶(RFG)组快得多。此外,与RFG组和对照组相比,MRI的弥散张量成像超声成像证实了最佳的轴突纤维重建。结论:综上所述,我们的结果表明AFG支架为加速定向宿主细胞的侵袭,血管系统重建和轴突再生提供了诱导基质,可促进和支持广泛的轴突再生和运动功能的恢复。

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