Ramburrun Poornima, Kumar Pradeep, Choonara Yahya E, Bijukumar Divya, du Toit Lisa C, Pillay Viness
Wits Advanced Drug Delivery Platform Research Unit, Department of Pharmacy and Pharmacology, School of Therapeutic Sciences, Faculty of Health Sciences, University of the Witwatersrand, 7 York Road, Parktown, Johannesburg 2193, South Africa.
Biomed Res Int. 2014;2014:132350. doi: 10.1155/2014/132350. Epub 2014 Jul 21.
Peripheral nerve regeneration strategies employ the use of polymeric engineered nerve conduits encompassed with components of a delivery system. This allows for the controlled and sustained release of neurotrophic growth factors for the enhancement of the innate regenerative capacity of the injured nerves. This review article focuses on the delivery of neurotrophic factors (NTFs) and the importance of the parameters that control release kinetics in the delivery of optimal quantities of NTFs for improved therapeutic effect and prevention of dose dumping. Studies utilizing various controlled-release strategies, in attempt to obtain ideal release kinetics, have been reviewed in this paper. Release strategies discussed include affinity-based models, crosslinking techniques, and layer-by-layer technologies. Currently available synthetic hollow nerve conduits, an alternative to the nerve autografts, have proven to be successful in the bridging and regeneration of primarily the short transected nerve gaps in several patient cases. However, current research emphasizes on the development of more advanced nerve conduits able to simulate the effectiveness of the autograft which includes, in particular, the ability to deliver growth factors.
周围神经再生策略采用了带有递送系统组件的聚合物工程神经导管。这使得神经营养生长因子能够可控且持续地释放,以增强受损神经的固有再生能力。这篇综述文章聚焦于神经营养因子(NTFs)的递送以及控制释放动力学的参数在递送最佳量NTFs以提高治疗效果和防止剂量倾泻方面的重要性。本文综述了利用各种控释策略试图获得理想释放动力学的研究。讨论的释放策略包括基于亲和力的模型、交联技术和层层技术。目前可用的合成中空神经导管作为神经自体移植的替代物,已在几例患者病例中成功地桥接和再生了主要是较短的横断神经间隙。然而,当前的研究重点是开发更先进的神经导管,使其能够模拟自体移植的有效性,特别是包括递送生长因子的能力。