Ji Ding, Zhaojun Cheng, Yulong Ma, Tongxing Zhang, Lilong Du, Xiaobing Jiang, Meifeng Zhu, Wen Li, Baoshan Xu
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引用次数: 0
摘要
可注射多孔微球是细胞输送、药物输送和组织再生的一个前景广阔的治疗平台。然而,具有高度互联多孔结构的蚕丝纤维蛋白微球的工程设计仍然是一个尚未解决的难题。本研究开发了一种简单高效的方法,无需使用有机溶剂即可制备具有可预测结构的丝纤维蛋白微球。通过广泛筛选,发现添加葡萄糖可引导蚕丝纤维素微球从内部到表面形成高度互联的多孔结构。与通过电喷雾、低温保存和冷冻干燥等方法生产的蚕丝纤维蛋白微球(SF 微球)相比,蚕丝纤维蛋白-葡萄糖微球(SF-Glu 微球)在体外促进细胞粘附和增殖的能力更强。SF-Glu 和 SF 微球都能保持负载模型药物的持续释放动力学。此外,SF-Glu 微球还能促进大鼠皮下注射后的内源性细胞招募、毛细血管迁移和巨噬细胞表型转换。这项研究为构建多孔丝纤维蛋白微球开辟了一条新途径,可在再生医学领域实现更广泛的应用。
Engineering Injectable and Highly Interconnected Porous Silk Fibroin Microspheres for Tissue Regeneration.
Injectable porous microspheres represent a promising therapeutic platform for cell delivery, drug delivery, and tissue regeneration. Yet, the engineering of silk fibroin microspheres with a highly interconnected porous structure remains an unsolved challenge. In this study, a simple and efficient method is developed that does not require the use of organic solvents to prepare silk fibroin microspheres with a predictable structure. Through extensive screening, the addition of glucose is found to direct the formation of a highly interconnected porous structure from the interior to the surface of silk fibroin microspheres. Compared to silk fibroin microspheres (SF microspheres) produced through a combination of electro-spray, cryopreservation, and freeze drying, silk fibroin-glucose microspheres (SF-Glu microspheres) demonstrates enhanced capabilities in promoting cell adhesion and proliferation in vitro. Both SF-Glu and SF microspheres exhibit the capacity to maintain the sustained release kinetics of the loaded model drug. Furthermore, SF-Glu microspheres facilitate the recruitment of endogenous cells, capillary migration, and macrophage phenotype switch following subcutaneous injection in the rats. This study opens a new avenue for the construction of porous silk fibroin microspheres, which could lead to a broader range of applications in regenerative medicine.
期刊介绍:
Advanced Healthcare Materials, a distinguished member of the esteemed Advanced portfolio, has been dedicated to disseminating cutting-edge research on materials, devices, and technologies for enhancing human well-being for over ten years. As a comprehensive journal, it encompasses a wide range of disciplines such as biomaterials, biointerfaces, nanomedicine and nanotechnology, tissue engineering, and regenerative medicine.