Department of Neurosurgery, Faculty of Medicine, Universitas Padjadjaran, Indonesia; Graduate School of Biomedical, Sciences, Doctoral Program, Faculty of Medicine, Universitas Padjadjaran, Indonesia.
Department of Neurosurgery, Faculty of Medicine, Universitas Padjadjaran, Indonesia; Nanotechnology for Medicine and Health Care Programme, University of Oxford, UK.
Clin Neurol Neurosurg. 2023 May;228:107684. doi: 10.1016/j.clineuro.2023.107684. Epub 2023 Mar 22.
3-dimensional (3D) printing carries a genuine potential for pre-operative planning in neurosurgery. Entry-level 3D printers offer practicality in low resource settings, but are often limited by the range of filament materials as well as the capability of open-source segmentation software.
We intended to demonstrate that 3D printing of neuroanatomical structures is possible using an entry-level 3D printer equipped with the direct drive (DD) modification, which supported flexible filaments, with the models segmented using an open-source software.
A DD system was installed onto the Ender 3 Pro printer. An attempt to print neurosurgical models using a low-cost 3D printer was conducted, where four patient-based neuroanatomical models were printed: skull base-vasculature, skull base-tumour, cervical spine, and ventricular system. The results were discussed and compared to similar endeavours in past literature.
Although DD installation was challenging and led to vibration and longer print time, which ultimately warranted an inferior printing speed, DD system enabled the printing with thermoplastic polyurethane (TPU), a versatile elastomer; in addition to producing equal amount of detail to those printed with high-end printers and advanced image segmentation software. Fitting the frame well, changing infill type, and avoiding warping and stringing will improve print quality with the DD system.
3D printing with entry-level 3D printers equipped with DD system has been proven to be a reliable way of accurately reproducing patient-specific neuroanatomical constructs. Follow-up studies are necessary to implement 3D printing for neurosurgical planning in low-resource settings.
3 维(3D)打印在神经外科中具有真正的术前规划潜力。入门级 3D 打印机在资源有限的环境中具有实用性,但通常受到灯丝材料范围以及开源分割软件功能的限制。
我们旨在证明使用配备直接驱动(DD)改装的入门级 3D 打印机可以实现神经解剖结构的 3D 打印,该改装支持柔性灯丝,并且使用开源软件对模型进行分割。
在 Ender 3 Pro 打印机上安装 DD 系统。尝试使用低成本 3D 打印机打印神经外科模型,其中打印了四个基于患者的神经解剖模型:颅底血管结构、颅底肿瘤、颈椎和脑室系统。讨论了结果并与过去文献中的类似努力进行了比较。
尽管 DD 安装具有挑战性,导致振动和更长的打印时间,最终导致打印速度较慢,但 DD 系统能够使用热塑性聚氨酯(TPU)进行打印,这是一种多功能弹性体;此外,还能够打印出与高端打印机和先进图像分割软件打印出的同等细节。与 DD 系统配合良好的框架、改变填充类型、避免翘曲和拉丝将提高打印质量。
配备 DD 系统的入门级 3D 打印机的 3D 打印已被证明是一种可靠的方法,可以准确复制特定于患者的神经解剖结构。需要进一步的研究来在资源有限的环境中实施 3D 打印用于神经外科规划。