Zhao Yanan, Tian Chuan, Wu Ping, Chen Feixiang, Xiao Ao, Ye Qifa, Shi Xiaowen, Wang Zijian, Han Xinwei, Chen Yun
Department of Interventional Radiology, The First Affiliated Hospital of Zhengzhou University, Zhengzhou, China.
Hubei Province Key Laboratory of Allergy and Immune Related Disease, Department of Biomedical Engineering, School of Basic Medical Sciences, Wuhan University, Wuhan, China.
Tissue Eng Part A. 2022 Mar;28(5-6):225-238. doi: 10.1089/ten.TEA.2021.0068. Epub 2021 Oct 28.
Designing scaffolds, with optimized microstructure and function for promoting the release of neuro-related factors, is significant in peripheral nerve regeneration. Herein, a series of hydroxypropyl chitosan/soy protein isolate composite sponges (HCSS) were fabricated by a freeze-drying technique. The physicochemical properties of the resultant HCSS were examined by a Fourier infrared spectrometer, X-ray diffractometer, scanning electron microscope, water absorption assay, water retention assay, and compressive strength assay. The results indicated that HCSS exhibited an interconnected porous microstructure and a high water retention ratio with the increase in soy protein isolate (SPI) content. The biological characterization found that the HCSS-50 containing 50% SPI content profoundly promoted the proliferation of RSC96 cells and the secretion of neuro-related factors without excessive reactive oxygen species production. In addition, HCSS-50 could significantly promote the expression of neuro-related factors; for example, the expression of TGF-β was three times higher than that of the control group. Finally, an optimized HCSS-based conduit was fabricated from HCSS-50 to repair sciatic nerve injury in rats with the combination of bone marrow mesenchymal stem cells (BMSCs) or BMSC-derived Schwann cells (SCs). The results suggested that the constructed HCSS-based conduit accompanying BMSC-derived SCs could effectively promote axonal regeneration and upregulate the expression of neuro-related factors such as , , and . Collectively, a newly engineered nerve conduit system was developed by incorporating HCSS-50 and BMSC-derived SCs, which could be an alternative candidate for peripheral nerve regeneration. Impact statement Peripheral nerve repair is of paramount significance in the clinical. This work describes a hydroxypropyl chitosan/soy protein isolate conduit, which could effectively promote axonal regeneration and upregulate the expression of neuro-related factors. Thus, we provide a potential candidate for peripheral nerve regeneration.
设计具有优化微观结构和功能以促进神经相关因子释放的支架,对外周神经再生具有重要意义。在此,通过冷冻干燥技术制备了一系列羟丙基壳聚糖/大豆分离蛋白复合海绵(HCSS)。通过傅里叶红外光谱仪、X射线衍射仪、扫描电子显微镜、吸水率测定、保水率测定和抗压强度测定来检测所得HCSS的理化性质。结果表明,随着大豆分离蛋白(SPI)含量的增加,HCSS呈现出相互连通的多孔微观结构和高保水率。生物学特性发现,含有50% SPI含量的HCSS-50能显著促进RSC96细胞的增殖和神经相关因子的分泌,且不会产生过多的活性氧。此外,HCSS-50能显著促进神经相关因子的表达;例如,TGF-β的表达比对照组高3倍。最后,用HCSS-50制备了一种优化的基于HCSS的导管,与骨髓间充质干细胞(BMSC)或BMSC来源的雪旺细胞(SC)联合用于修复大鼠坐骨神经损伤。结果表明,构建的基于HCSS的导管与BMSC来源的SC联合使用可有效促进轴突再生,并上调诸如 、 和 等神经相关因子的表达。总的来说,通过结合HCSS-50和BMSC来源的SC开发了一种新的工程化神经导管系统,这可能是外周神经再生的另一种候选方案。影响声明外周神经修复在临床上至关重要。这项工作描述了一种羟丙基壳聚糖/大豆分离蛋白导管,它可以有效促进轴突再生并上调神经相关因子的表达。因此,我们为外周神经再生提供了一个潜在的候选方案。