Chen Xiaoyan, Ren Lei, Zhang Hui, Hu Yangnan, Liao Menghui, Shen Yingbo, Wang Kaichen, Cai Jiaying, Cheng Hong, Guo Jiamin, Qi Yanru, Wei Hao, Li Xiaokun, Shang Luoran, Xiao Jian, Sun Jingwu, Chai Renjie
State Key Laboratory of Bioelectronics Department of Otolaryngology Head and Neck Surgery Zhongda Hospital School of Life Sciences and Technology Advanced Institute for Life and Health Jiangsu Province High Tech Key Laboratory for Bio-Medical Research Southeast University Nanjing China.
Chien-Shiung Wu College Southeast University Nanjing China.
Smart Med. 2023 Mar 28;2(2):e20220038. doi: 10.1002/SMMD.20220038. eCollection 2023 May.
Spinal cord injury is a severe central nervous system injury, and developing appropriate drug delivery platforms for spinal nerve regeneration is highly anticipated. Here, we propose a basic fibroblast growth factor (bFGF)-loaded methacrylate gelatin (GelMA) hydrogel microsphere with ideal performances for spinal cord injury repair. Benefitting from the precise droplet manipulation capability of the microfluidic technology, the GelMA microspheres possess uniform and satisfactory size and good stability. More importantly, by taking advantage of the porous structures and facile chemical modification of the GelMA microspheres, bFGF could be easily loaded and gradually released. By co-culturing with neural stem cells, it is validated that the bFGF-loaded GelMA microspheres could effectively promote the proliferation and differentiation of neural stem cells. We also confirm the effective role of the bFGF-loaded GelMA microspheres in nerve repair of spinal cord injury in rats. Our results demonstrate the potential value of the microspheres for applications in repairing central nervous system injuries.
脊髓损伤是一种严重的中枢神经系统损伤,因此开发适用于脊髓神经再生的药物递送平台备受期待。在此,我们提出了一种负载碱性成纤维细胞生长因子(bFGF)的甲基丙烯酸明胶(GelMA)水凝胶微球,其在脊髓损伤修复方面具有理想的性能。受益于微流控技术精确的液滴操控能力,GelMA微球具有均匀且令人满意的尺寸以及良好的稳定性。更重要的是,利用GelMA微球的多孔结构和简便的化学修饰,bFGF能够轻松负载并逐渐释放。通过与神经干细胞共培养,验证了负载bFGF的GelMA微球能够有效促进神经干细胞的增殖和分化。我们还证实了负载bFGF的GelMA微球在大鼠脊髓损伤神经修复中的有效作用。我们的结果证明了这些微球在修复中枢神经系统损伤方面的潜在应用价值。