Center for Nanotechnology & Advanced Biomaterials, SASTRA University, Thanjavur, India.
J Biomed Sci. 2009 Nov 25;16(1):108. doi: 10.1186/1423-0127-16-108.
Neural tissue repair and regeneration strategies have received a great deal of attention because it directly affects the quality of the patient's life. There are many scientific challenges to regenerate nerve while using conventional autologous nerve grafts and from the newly developed therapeutic strategies for the reconstruction of damaged nerves. Recent advancements in nerve regeneration have involved the application of tissue engineering principles and this has evolved a new perspective to neural therapy. The success of neural tissue engineering is mainly based on the regulation of cell behavior and tissue progression through the development of a synthetic scaffold that is analogous to the natural extracellular matrix and can support three-dimensional cell cultures. As the natural extracellular matrix provides an ideal environment for topographical, electrical and chemical cues to the adhesion and proliferation of neural cells, there exists a need to develop a synthetic scaffold that would be biocompatible, immunologically inert, conducting, biodegradable, and infection-resistant biomaterial to support neurite outgrowth. This review outlines the rationale for effective neural tissue engineering through the use of suitable biomaterials and scaffolding techniques for fabrication of a construct that would allow the neurons to adhere, proliferate and eventually form nerves.
神经组织修复和再生策略受到了广泛关注,因为它直接影响患者的生活质量。在使用传统的自体神经移植物和新开发的损伤神经重建治疗策略时,有许多科学挑战需要克服。最近在神经再生方面的进展涉及组织工程原理的应用,这为神经治疗带来了新的视角。神经组织工程的成功主要基于通过开发类似于天然细胞外基质的合成支架来调节细胞行为和组织进展,从而支持三维细胞培养。由于天然细胞外基质为神经细胞的粘附和增殖提供了理想的拓扑、电学和化学线索环境,因此需要开发一种具有生物相容性、免疫惰性、导电性、可生物降解和抗感染的合成支架,以支持神经突的生长。本综述通过使用合适的生物材料和支架制造技术概述了有效神经组织工程的基本原理,以制造一种允许神经元粘附、增殖并最终形成神经的构建体。