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Peripheral Nerve Regeneration Strategies: Electrically Stimulating Polymer Based Nerve Growth Conduits

机译:周围神经再生策略:电刺激聚合物基神经生长导管

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摘要

Treatment of large peripheral nerve damages ranges from the use of an autologous nerve graft to a synthetic nerve growth conduit. Biological grafts, in spite of many merits, show several limitations in terms of availability and donor site morbidity, and outcomes are suboptimal due to fascicle mismatch, scarring, and fibrosis. Tissue engineered nerve graft substitutes utilize polymeric conduits in conjunction with cues both chemical and physical, cells alone and or in combination. The chemical and physical cues delivered through polymeric conduits play an important role and drive tissue regeneration. Electrical stimulation (ES) has been applied toward the repair and regeneration of various tissues such as muscle, tendon, nerve, and articular tissue both in laboratory and clinical settings. The underlying mechanisms that regulate cellular activities such as cell adhesion, proliferation, cell migration, protein production, and tissue regeneration following ES is not fully understood. Polymeric constructs that can carry the electrical stimulation along the length of the scaffold have been developed and characterized for possible nerve regeneration applications. We discuss the use of electrically conductive polymers and associated cell interaction, biocompatibility, tissue regeneration, and recent basic research for nerve regeneration. In conclusion, a multifunctional combinatorial device comprised of biomaterial, structural, functional, cellular, and molecular aspects may be the best way forward for effective peripheral nerve regeneration.
机译:大型周围神经损伤的治疗范围包括使用自体神经移植物到合成神经生长导管。尽管有许多优点,生物移植物在可利用性和供体部位发病率方面仍显示出一些局限性,并且由于束状错配,瘢痕形成和纤维化,结果并不理想。组织工程化的神经移植物替代物利用聚合物导管与单独的或组合的细胞结合化学和物理线索。通过聚合物导管传递的化学和物理线索起着重要作用,并驱动组织再生。在实验室和临床环境中,已将电刺激(ES)用于修复和再生各种组织,例如肌肉,腱,神经和关节组织。 ES后调节细胞活动(例如细胞粘附,增殖,细胞迁移,蛋白质产生和组织再生)的基本机制尚不完全清楚。已经开发了可以沿支架的长度进行电刺激的聚合物结构,并对其进行了表征,以用于可能的神经再生应用。我们讨论了导电聚合物的使用以及相关的细胞相互作用,生物相容性,组织再生以及神经再生的最新基础研究。总之,由生物材料,结构,功能,细胞和分子方面组成的多功能组合装置可能是有效进行周围神经再生的最佳方法。

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