Zhu Wei, Tringale Kathryn R, Woller Sarah A, You Shangting, Johnson Susie, Shen Haixu, Schimelman Jacob, Whitney Michael, Steinauer Joanne, Xu Weizhe, Yaksh Tony L, Nguyen Quyen T, Chen Shaochen
Department of NanoEngineering, University of California San Diego, La Jolla, CA 92093, United States.
Department of Surgery, University of California San Diego, La Jolla, CA 92093, United States.
Mater Today (Kidlington). 2018 Nov;21(9):951-959. doi: 10.1016/j.mattod.2018.04.001. Epub 2018 Apr 27.
Engineered nerve guidance conduits (NGCs) have been demonstrated for repairing peripheral nerve injuries. However, there remains a need for an advanced biofabrication system to build NGCs with complex architectures, tunable material properties, and customizable geometrical control. Here, a rapid continuous 3D-printing platform was developed to print customizable NGCs with unprecedented resolution, speed, flexibility, and scalability. A variety of NGC designs varying in complexity and size were created including a life-size biomimetic branched human facial NGC. implantation of NGCs with microchannels into complete sciatic nerve transections of mouse models demonstrated the effective directional guidance of regenerating sciatic nerves via branching into the microchannels and extending toward the distal end of the injury site. Histological staining and immunostaining further confirmed the progressive directional nerve regeneration and branching behavior across the entire NGC length. Observational and functional tests, including the von Frey threshold test and thermal test, showed promising recovery of motor function and sensation in the ipsilateral limbs grafted with the 3D-printed NGCs.
工程化神经引导导管(NGCs)已被证明可用于修复周围神经损伤。然而,仍然需要一种先进的生物制造系统来构建具有复杂结构、可调材料特性和可定制几何控制的NGCs。在此,开发了一种快速连续3D打印平台,以以前所未有的分辨率、速度、灵活性和可扩展性打印可定制的NGCs。创建了各种复杂度和尺寸不同的NGCs设计,包括真人大小的仿生分支人类面部NGCs。将具有微通道的NGCs植入小鼠模型的完全坐骨神经横断处,证明了再生坐骨神经通过分支进入微通道并向损伤部位远端延伸的有效定向引导。组织学染色和免疫染色进一步证实了在整个NGCs长度上神经的逐步定向再生和分支行为。观察和功能测试,包括von Frey阈值测试和热测试,显示移植了3D打印NGCs的同侧肢体的运动功能和感觉有良好的恢复。