School of Engineering, Institute for Materials and Processes, The University of Edinburgh, Robert Stevenson Road, Edinburgh, EH9 3FB, United Kingdom; Department of Mechanical Engineering, University of Engineering and Technology, Lahore, (new campus) Pakistan.
School of Engineering, Institute for Materials and Processes, The University of Edinburgh, Robert Stevenson Road, Edinburgh, EH9 3FB, United Kingdom.
Med Eng Phys. 2021 Aug;94:52-60. doi: 10.1016/j.medengphy.2021.06.005. Epub 2021 Jun 16.
There is a high demand for small diameter vascular grafts having mechanical and biological properties similar to that of living tissues. Tissue-engineered vascular grafts using current methods have often failed due to the mismatch of mechanical properties between the implanted graft and living tissues. To address this limitation, a hybrid bioprinting-electrospinning system is developed for vascular tissue engineering applications. The setup is capable of producing layered structure from electrospun fibres and cell-laden hydrogel. A Creality3D Ender 3D printer has been modified into a hybrid setup having one bioprinting head and two electrospinning heads. Fortus 250mc and Flashforge Creator Pro 3D printers were used to print parts using acrylonitrile butadiene styrene (ABS) and polylactic acid (PLA) polymers. An Arduino mega 2560 and a Ramps 1.4 controller board were selected to control the functions of the hybrid bioprinting setup. The setup was tested successfully to print a tubular construct around a rotating needle.
对于机械性能和生物性能类似于活体组织的小直径血管移植物的需求很高。由于植入移植物与活体组织之间的机械性能不匹配,使用当前方法的组织工程血管移植物经常失败。为了解决这个限制,开发了一种混合生物打印-静电纺丝系统用于血管组织工程应用。该装置能够从静电纺纤维和细胞负载水凝胶中产生分层结构。一台 Creality3D Ender 3D 打印机经过改装,成为具有一个生物打印头和两个静电纺丝头的混合装置。Fortus 250mc 和 Flashforge Creator Pro 3D 打印机用于使用丙烯腈丁二烯苯乙烯(ABS)和聚乳酸(PLA)聚合物打印零件。选择 Arduino mega 2560 和 Ramps 1.4 控制器板来控制混合生物打印装置的功能。该装置成功地测试了围绕旋转针打印管状结构。