Department of Pharmaceutical Technology, Faculty of Pharmacy, Hacettepe University, 06100 Ankara, Turkey; Department of Pharmaceutical Technology, Faculty of Pharmacy, Erzincan Binali Yıldırım University, 24100 Erzincan, Turkey.
Department of Pharmaceutical Technology, Faculty of Pharmacy, Hacettepe University, 06100 Ankara, Turkey.
Eur J Pharm Biopharm. 2020 Aug;153:1-13. doi: 10.1016/j.ejpb.2020.05.032. Epub 2020 Jun 3.
Despite the new treatment strategies within the last 30 years, peripheral nerve injury (PNI) is still a worldwide clinical problem. The incidence rate of PNIs is 1 in 1000 individuals per year. In this study, we designed a composite nanoplatform for dual therapy in peripheral nerve injury and investigated the in-vivo efficacy in rat sciatic nerve crush injury model. Alpha-lipoic acid (ALA) was loaded into poly lactic-co-glycolic acid (PLGA) electrospun nanofibers which would release the drug in a faster manner and atorvastatin (ATR) loaded chitosan (CH) nanoparticles were embedded into PLGA nanofibers to provide sustained release. Sciatic nerve crush was generated via Yasargil aneurism clip with a holding force of 50 g/cm. Nanofiber formulations were administered to the injured nerve immediately after trauma. Functional recovery of operated rat hind limb was evaluated using the sciatic functional index (SFI), extensor postural thrust (EPT), withdrawal reflex latency (WRL) and Basso, Beattie, and Bresnahan (BBB) test up to one month in the post-operative period at different time intervals. In addition to functional recovery assessments, ultrastructural and biochemical analyses were carried out on regenerated nerve fibers. L-929 mouse fibroblast cell line and B35 neuroblastoma cell line were used to investigate the cytotoxicity of nanofibers before in-vivo experiments. The neuroprotection potential of these novel nanocomposite fiber formulations has been demonstrated after local implantation of composite nanofiber sheets incorporating ALA and ATR, which contributed to the recovery of the motor and sensory function and nerve regeneration in a rat sciatic nerve crush injury model.
尽管在过去的 30 年中出现了新的治疗策略,但周围神经损伤(PNI)仍然是一个全球性的临床问题。PNI 的发病率为每年每 1000 人中 1 例。在这项研究中,我们设计了一种用于周围神经损伤的双重治疗的复合纳米平台,并在大鼠坐骨神经挤压损伤模型中研究了其体内疗效。将α-硫辛酸(ALA)载入聚乳酸-共-羟基乙酸(PLGA)电纺纳米纤维中,可使药物更快释放,阿伐他汀(ATR)载入壳聚糖(CH)纳米粒并嵌入 PLGA 纳米纤维中以提供持续释放。通过 Yasargil 动脉瘤夹产生坐骨神经挤压,夹力为 50g/cm。纳米纤维制剂在创伤后立即施用于损伤的神经。术后不同时间间隔通过坐骨神经功能指数(SFI)、伸肌姿势推力(EPT)、撤回反射潜伏期(WRL)和 Basso、Beattie 和 Bresnahan(BBB)试验评估手术大鼠后肢的功能恢复。除了功能恢复评估外,还对再生神经纤维进行了超微结构和生化分析。在体内实验之前,使用 L-929 小鼠成纤维细胞系和 B35 神经母细胞瘤细胞系来研究纳米纤维的细胞毒性。局部植入载有 ALA 和 ATR 的复合纳米纤维片后,这些新型纳米复合材料纤维制剂的神经保护潜力已得到证明,这有助于在大鼠坐骨神经挤压损伤模型中恢复运动和感觉功能以及神经再生。