Chimene David, Deo Kaivalya A, Thomas Jeremy, Dahle Landon, Mandrona Cole, Gaharwar Akhilesh K
Department of Biomedical Engineering, College of Engineering, Texas A&M University, College Station, Texas, USA.
Department of Material Science and Engineering, College of Engineering, Texas A&M University, College Station, Texas, USA.
GEN Biotechnol. 2022 Aug 1;1(4):386-400. doi: 10.1089/genbio.2022.0021. Epub 2022 Aug 18.
For the past decade, additive manufacturing has resulted in significant advances toward fabricating anatomic-size patient-specific scaffolds for tissue models and regenerative medicine. This can be attributed to the development of advanced bioinks capable of precise deposition of cells and biomaterials. The combination of additive manufacturing with advanced bioinks is enabling researchers to fabricate intricate tissue scaffolds that recreate the complex spatial distributions of cells and bioactive cues found in the human body. However, the expansion of this promising technique has been hampered by the high cost of commercially available bioprinters and proprietary software. In contrast, conventional three-dimensional (3D) printing has become increasingly popular with home hobbyists and caused an explosion of both low-cost thermoplastic 3D printers and open-source software to control the printer. In this study, we bring these benefits into the field of bioprinting by converting widely available and cost-effective 3D printers into fully functional, open-source, and customizable multihead bioprinters. These bioprinters utilize computer controlled volumetric extrusion, allowing bioinks with a wide range of flow properties to be bioprinted, including non-Newtonian bioinks. We demonstrate the practicality of this approach by designing bioprinters customized with multiple extruders, automatic bed leveling, and temperature controls for ∼$400 USD. These bioprinters were then used for and bioprinting to demonstrate their utility for tissue engineering.
在过去十年中,增材制造在制造用于组织模型和再生医学的解剖学尺寸的患者特异性支架方面取得了重大进展。这可归因于能够精确沉积细胞和生物材料的先进生物墨水的开发。增材制造与先进生物墨水的结合使研究人员能够制造复杂的组织支架,重现人体中发现的细胞和生物活性线索的复杂空间分布。然而,这种有前景的技术的扩展受到了市售生物打印机和专有软件的高成本的阻碍。相比之下,传统的三维(3D)打印在家庭爱好者中越来越受欢迎,并导致了低成本热塑性3D打印机和用于控制打印机的开源软件的激增。在本研究中,我们通过将广泛可用且经济高效的3D打印机转变为功能齐全、开源且可定制的多头生物打印机,将这些优势引入生物打印领域。这些生物打印机利用计算机控制的体积挤出,允许打印具有广泛流动特性的生物墨水,包括非牛顿生物墨水。我们通过设计定制有多台挤出机、自动床面调平功能和温度控制功能的生物打印机(成本约为400美元)来证明这种方法的实用性。然后,这些生物打印机被用于 和 生物打印,以证明它们在组织工程中的效用。