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3D-printed individual labware in biosciences by rapid prototyping: In vitro biocompatibility and applications for eukaryotic cell cultures

机译:通过快速原型制作3D打印的生物科学中的单个实验室用具:体外生物相容性及其在真核细胞培养中的应用

摘要

Three-dimensional (3D) printing techniques are continuously evolving, thus their application fields are also growing very fast. The applications discussed here highlight the use of rapid prototyping in a dedicated biotechnology laboratory environment. The combination of improving prototypes using fused deposition modeling printers and producing useable parts with selective laser sintering printers enables a cost- and time-efficient use of such techniques. Biocompatible materials for 3D printing are already available and the printed parts can directly be used in the laboratory. To demonstrate this, we tested 3D printing materials for their in vitro biocompatibility. To exemplify the versatility of the 3D printing process applied to a biotechnology laboratory, a normal well plate design was modified in silico to include different baffle geometries. This plate was subsequently 3D printed and used for cultivation. In the near future, this design and print possibility will revolutionize the industry. Advanced printers will be available for laboratories and can be used for creating individual labware or standard disposables on demand. These applications have the potential to change the way research is done and change the management of stock-keeping, leading to more flexibility and promoting creativity of the scientists.
机译:三维(3D)打印技术正在不断发展,因此它们的应用领域也非常迅速地增长。这里讨论的应用强调了在专用生物技术实验室环境中快速原型的使用。使用熔融沉积建模打印机改进原型并与选择性激光烧结打印机生产可用零件的组合,可以经济高效地使用此类技术。用于3D打印的生物相容性材料已经可用,并且打印的零件可以直接在实验室中使用。为了证明这一点,我们测试了3D打印材料的体外生物相容性。为了举例说明应用于生物技术实验室的3D打印过程的多功能性,对计算机上的常规孔板设计进行了修改,以包括不同的挡板几何形状。随后将该板3D打印并用于培养。在不久的将来,这种设计和印刷可能性将彻底改变行业。先进的打印机将可用于实验室,并可用于按需创建单独的实验室器具或标准一次性用品。这些应用程序可能会改变研究方式并改变库存管理方式,从而带来更大的灵活性并促进科学家的创造力。

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