Department of Orthopaedics, University Medical Center Utrecht, Heidelberglaan 100, 3508 GA Utrecht, The Netherlands. Department of Plastic, Reconstructive and Hand Surgery, University Medical Center Utrecht, Heidelberglaan 100, 3508 GA Utrecht, The Netherlands.
Biofabrication. 2015 Jul 22;7(3):032001. doi: 10.1088/1758-5090/7/3/032001.
Auricular malformations, which impose a significant social and psychological burden, are currently treated using ear prostheses, synthetic implants or autologous implants derived from rib cartilage. Advances in the field of regenerative medicine and biofabrication provide the possibility to engineer functional cartilage with intricate architectures and complex shapes using patient-derived or donor cells. However, the development of a successful auricular cartilage implant still faces a number of challenges. These challenges include the generation of a functional biochemical matrix, the fabrication of a customized anatomical shape, and maintenance of that shape. Biofabrication technologies may have the potential to overcome these challenges due to their ability to reproducibly deposit multiple materials in complex geometries in a highly controllable manner. This topical review summarizes this potential of biofabrication technologies for the generation of implants for auricular reconstruction. In particular, it aims to discuss how biofabrication technologies, although still in pre-clinical phase, could overcome the challenges of generating and maintaining the desired auricular shapes. Finally, remaining bottlenecks and future directions are discussed.
耳畸形给患者带来了巨大的社会和心理负担,目前的治疗方法包括使用耳假体、合成植入物或自体肋软骨植入物。再生医学和生物制造领域的进步为使用患者来源或供体细胞来构建具有复杂结构和形状的功能性软骨提供了可能。然而,成功的耳廓软骨植入物的开发仍然面临着许多挑战。这些挑战包括功能性生化基质的生成、定制解剖形状的制造以及形状的维持。生物制造技术由于能够以高度可控的方式可重复地在复杂几何形状中沉积多种材料,因此具有克服这些挑战的潜力。本专题综述总结了生物制造技术在耳廓重建植入物生成方面的这一潜力。特别是,它旨在讨论生物制造技术如何克服生成和维持所需耳廓形状的挑战,尽管这些技术仍处于临床前阶段。最后,讨论了剩余的瓶颈和未来的方向。