Gwak So-Jung, Yun Yeomin, Yoon Do Heum, Kim Keung Nyun, Ha Yoon
Spine & Spinal Cord Institute, Department of Neurosurgery, Yonsei University College of Medicine, Seoul, Korea.
Department of Bioengineering, Clemson University, Clemson, South Carolina, United States of America.
PLoS One. 2016 Jan 29;11(1):e0147389. doi: 10.1371/journal.pone.0147389. eCollection 2016.
Gene delivery holds therapeutic promise for the treatment of neurological diseases and spinal cord injury. Although several studies have investigated the use of non-viral vectors, such as polyethylenimine (PEI), their clinical value is limited by their cytotoxicity. Recently, biodegradable poly (lactide-co-glycolide) (PLGA) nanospheres have been explored as non-viral vectors. Here, we show that modification of PLGA nanospheres with 3β-[N-(N',N'-dimethylaminoethane) carbamoyl] cholesterol (DC-Chol) enhances gene transfection efficiency. PLGA/DC-Chol nanospheres encapsulating DNA were prepared using a double emulsion-solvent evaporation method. PLGA/DC-Chol nanospheres were less cytotoxic than PEI both in vitro and in vivo. DC-Chol modification improved the uptake of nanospheres, thereby increasing their transfection efficiency in mouse neural stem cells in vitro and rat spinal cord in vivo. Also, transgene expression induced by PLGA nanospheres was higher and longer-lasting than that induced by PEI. In a rat model of spinal cord injury, PLGA/DC-Chol nanospheres loaded with vascular endothelial growth factor gene increased angiogenesis at the injury site, improved tissue regeneration, and resulted in better recovery of locomotor function. These results suggest that DC-Chol-modified PLGA nanospheres could serve as therapeutic gene delivery vehicles for spinal cord injury.
基因递送在治疗神经疾病和脊髓损伤方面具有治疗前景。尽管已有多项研究探讨了非病毒载体(如聚乙烯亚胺(PEI))的应用,但其临床价值受到细胞毒性的限制。最近,可生物降解的聚(丙交酯-共-乙交酯)(PLGA)纳米球已被作为非病毒载体进行研究。在此,我们表明用3β-[N-(N',N'-二甲基氨基乙烷)氨基甲酰]胆固醇(DC-Chol)修饰PLGA纳米球可提高基因转染效率。采用双乳液-溶剂蒸发法制备了包裹DNA的PLGA/DC-Chol纳米球。PLGA/DC-Chol纳米球在体外和体内的细胞毒性均低于PEI。DC-Chol修饰提高了纳米球的摄取,从而提高了其在体外小鼠神经干细胞和体内大鼠脊髓中的转染效率。此外,PLGA纳米球诱导的转基因表达比PEI诱导的更高且更持久。在脊髓损伤大鼠模型中,负载血管内皮生长因子基因的PLGA/DC-Chol纳米球增加了损伤部位的血管生成,改善了组织再生,并使运动功能恢复得更好。这些结果表明,DC-Chol修饰的PLGA纳米球可作为脊髓损伤的治疗性基因递送载体。