Allen Zennifer, David Raj Chellappan, Prabu Chinnaswamy, Anuradha Subramanian, Dhakshinamoorthy Sundaramurthi, Swaminathan Sethuraman
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Subcutaneous implantation of the TPU constructs for three months in rats showed neovascularization with negligible local tissue inflammatory reactions and was classified as a non-irritant biomaterial as per ISO 10993-6. To perform<i>in vivo</i>efficacy studies, nerve conduits equivalent to rat's sciatic nerve were fabricated and bridged in a 10 mm sciatic nerve transection model. After four months of implantation, the sensorimotor function and histological assessments revealed that the 3D printed TPU conduits promoted the regeneration in critical-sized peripheral nerve defects equivalent to autografts. 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引用次数: 0
摘要
三维(3D)打印是一种新兴工具,可用于创建与原生组织微结构类似的患者特异性组织结构。在这项研究中,通过结合逆向工程和材料挤压(即熔融沉积建模)技术,使用热塑性聚氨酯(TPU)开发了解剖学等效的三维神经导管。对打印参数进行了优化,以制造出神经等效的 TPU 构建物。以不同填充密度打印的热塑性聚氨酯结构支持神经细胞的粘附、增殖和基因表达。将热塑性聚氨酯构筑物皮下植入大鼠体内三个月后,大鼠体内出现了新生血管,局部组织炎症反应可忽略不计,根据 ISO 10993-6 标准,该构筑物被归类为无刺激性生物材料。为了进行体内疗效研究,我们制作了相当于大鼠坐骨神经的神经导管,并在 10 毫米坐骨神经横断模型中进行桥接。植入四个月后,感觉运动功能和组织学评估显示,三维打印热塑性聚氨酯导管促进了临界大小周围神经缺损的再生,效果与自体移植物相当。这项研究证明,基于热塑性聚氨酯的三维打印神经引导导管可以复制天然神经的复杂特征,从而促进周围神经缺损的再生,同时还显示出将其扩展到其他组织用于再生医学应用的潜力。
Efficacy of 3D printed anatomically equivalent thermoplastic polyurethane guide conduits in promoting the regeneration of critical-sized peripheral nerve defects.
Three-dimensional (3D) printing is an emerging tool for creating patient-specific tissue constructs analogous to the native tissue microarchitecture. In this study, anatomically equivalent 3D nerve conduits were developed using thermoplastic polyurethane (TPU) by combining reverse engineering and material extrusion (i.e. fused deposition modeling) technique. Printing parameters were optimized to fabricate nerve-equivalent TPU constructs. The TPU constructs printed with different infill densities supported the adhesion, proliferation, and gene expression of neuronal cells. Subcutaneous implantation of the TPU constructs for three months in rats showed neovascularization with negligible local tissue inflammatory reactions and was classified as a non-irritant biomaterial as per ISO 10993-6. To performin vivoefficacy studies, nerve conduits equivalent to rat's sciatic nerve were fabricated and bridged in a 10 mm sciatic nerve transection model. After four months of implantation, the sensorimotor function and histological assessments revealed that the 3D printed TPU conduits promoted the regeneration in critical-sized peripheral nerve defects equivalent to autografts. This study proved that TPU-based 3D printed nerve guidance conduits can be created to replicate the complicated features of natural nerves that can promote the regeneration of peripheral nerve defects and also show the potential to be extended to several other tissues for regenerative medicine applications.
期刊介绍:
Biofabrication is dedicated to advancing cutting-edge research on the utilization of cells, proteins, biological materials, and biomaterials as fundamental components for the construction of biological systems and/or therapeutic products. Additionally, it proudly serves as the official journal of the International Society for Biofabrication (ISBF).