论文标题

神经组织工程应用的生物制造

Biofabrication for neural tissue engineering applications

论文作者

Papadimitriou, L., Manganas, P., Ranella, A., Stratakis, E.

论文摘要

与其他组织类型不同,神经组织延伸到宽阔而复杂的环境,该环境提供了多种不同的生化和拓扑刺激,从而定义了该组织的功能。由于这种复杂性,传统的移植治疗方法非常无效。因此,恢复周围和中枢神经系统受伤一直是一个持续的挑战。神经系统中的组织工程和再生医学提供了新的替代医学方法。这些方法使用外部生物材料支撑物,称为支架,以创建平台,以供细胞迁移到损伤部位并修复组织。神经组织工程(NTE)的挑战仍然是具有精确控制,可调的地形,生化线索和表面能量的支架的制造,能够指导和控制神经元细胞的功能。同时,已经表明,神经组织工程提供了在体外(主要通过实验室芯片系统)对神经系统疾病进行建模的潜力,尤其是在很难获得合适的动物模型的情况下。由于该领域的激烈研究活动,已经开发了多种合成方法和3D制造方法,用于制造NTE支架,包括软光刻和自组装,以及减法(自上而下)和加性(自下而上)制造。本文旨在审查与用于NTE应用的生物材料支架和实验室芯片系统的开发有关的快速增长领域的现有研究工作。除了提出NTE策略取得的最新进展外,这项工作还描述了现有的局限性,并突出了该领域的新兴可能性和未来前景。

Unlike other tissue types, the nervous tissue extends to a wide and complex environment that provides a plurality of different biochemical and topological stimuli which in turn define the functions of that tissue. As a consequence of such complexity, the traditional transplantation therapeutic methods are quite ineffective; therefore, the restoration of peripheral and central nervous system injuries has been a continuous challenge. Tissue engineering and regenerative medicine in the nervous system have provided new alternative medical approaches. These methods use external biomaterial supports, known as scaffolds, in order to create platforms for the cells to migrate to the injury site and repair the tissue. The challenge in neural tissue engineering (NTE) remains the fabrication of scaffolds with precisely controlled, tunable topography, biochemical cues and surface energy, capable of directing and controlling the function of neuronal cells. At the same time, it has been shown that neural tissue engineering provides the potential to model neurological diseases in vitro, mainly via lab-on-a-chip systems, especially in cases for which it is difficult to obtain suitable animal models. As a consequence of the intense research activity in the field, a variety of synthetic approaches and 3D fabrication methods have been developed for the fabrication of NTE scaffolds, including soft lithography and self-assembly, as well as subtractive (top-down) and additive (bottom-up) manufacturing. This article aims at reviewing the existing research effort in the rapidly growing field related to the development of biomaterial scaffolds and lab-on-a-chip systems for NTE applications. Besides presenting recent advances achieved by NTE strategies, this work also delineates existing limitations and highlights emerging possibilities and future prospects in this field.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源