Department of Anatomy, Comparative Medicine Institution, Medical School of Nantong University, Nantong 226001, Jiangsu Province, China.
Department of Rehabilitation Medicine, Suzhou Hospital Affiliated to Nanjing Medical University, Suzhou Science & Technology Town Hospital, Suzhou, 215153, Jiangsu Province, China.
J Mater Chem B. 2022 Aug 4;10(30):5753-5764. doi: 10.1039/d2tb00792d.
Spinal cord injury (SCI), as a serious disabling disease, is still haunted by lacking of effective treatments. We previously found that transplantation of menstrual blood-derived mesenchymal stem cells (MenSCs) promoted axon regeneration in rats with SCI, while the abominable microenvironment after the SCI inhibited the survival of stem cells after transplantation. Biomaterials can support the activity of stem cells and accelerate the functional reconstruction of the injured spinal cord. In this study, we constructed a novel composite scaffold consisting of the decellularized spinal cord extracellular matrix-gel (DSCG) and the GelMA hydrogel, which harbored high water retention, wettability, degradability and soft mechanical property. , the DSCG/GelMA composite scaffold provided a dual bionic microenvironment with optimized bioactive components and favorable microstructures for the adhesion, proliferation and differentiation of MenSCs. After that, we prepared MenSC-encapsulated DSCG/GelMA composite scaffolds to bridge the 2 mm gap in rats with completely transected SCI. The results showed that the combined use of the DSCG/GelMA composite scaffold with MenSCs improved the motor function, reduced the inflammatory response, promoted neuronal differentiation, and inhibited the proliferation of reactive astrocytes after spinal cord injury. Altogether, our study provided a promising novel therapeutic option of using bioactive materials synergistic with stem cells for the treatment of SCI.
脊髓损伤(SCI)作为一种严重的致残性疾病,仍然缺乏有效的治疗方法。我们之前发现,移植月经血源性间充质干细胞(MenSCs)可促进 SCI 大鼠的轴突再生,而 SCI 后的恶劣微环境抑制了移植后干细胞的存活。生物材料可以支持干细胞的活性并加速损伤脊髓的功能重建。在这项研究中,我们构建了一种由去细胞化脊髓细胞外基质-凝胶(DSCG)和 GelMA 水凝胶组成的新型复合支架,该支架具有高保水率、高润湿性、可降解性和柔软的机械性能。DSCG/GelMA 复合支架为 MenSCs 的黏附、增殖和分化提供了具有优化生物活性成分和有利微结构的双重仿生微环境。随后,我们制备了包埋 MenSCs 的 DSCG/GelMA 复合支架,以桥接完全横断 SCI 大鼠的 2mm 间隙。结果表明,DSCG/GelMA 复合支架与 MenSCs 的联合使用改善了运动功能,减轻了炎症反应,促进了神经元分化,并抑制了脊髓损伤后的反应性星形胶质细胞增殖。总之,我们的研究为使用与干细胞协同作用的生物活性材料治疗 SCI 提供了一种有前景的新治疗选择。