Department of Radiation Oncology, ONJ Centre, Austin Hospital, Heidelberg, Australia.
Department of Radiation Oncology, Peter MacCallum Cancer Centre, Melbourne, Australia.
J Med Radiat Sci. 2022 Sep;69(3):348-356. doi: 10.1002/jmrs.591. Epub 2022 May 4.
Polylactic acid (PLA) is a promising material for customised bolus 3D-printing in radiotherapy, however variations in printing techniques between external manufacturers could increase treatment uncertainties. This study aimed to assess consistency across various 3D-printed PLA samples from different manufacturers.
Sample prints of dimensions 5 × 5 × 1 cm with 100% infill were acquired from multiple commercial 3D-printing services. All samples were CT scanned to determine average Hounsfield unit (HU) values and physical densities. The coefficient of equivalent thickness (CET) was obtained for both photons and electrons and dose attenuation compared to TPS calculations in Elekta Monaco v5.11.
Some samples showed warped edges up to 1.5 mm and extensive internal radiological defects only detectable with CT scanning. Physical densities ranged from 1.06 to 1.22 g cm and HU values ranged from -5.1 to 221.0 HU. Measured CET values varied from 0.95 to 1.17 and TPS dose calculations were consistent with the variation in CET. Electron R50 and R90 shifted by up to 2 mm for every 1 cm of printed bolus, a clinically significant finding. Photon surface dose varied by up to 3%, while depth doses were within 1%.
3D-printed PLA can have considerable variability in density, HU and CET values between samples and manufacturers. Centres looking to outsource 3D-printed bolus would benefit from clear, open communication with manufacturers and undertake stringent QA examination prior to implementation into the clinical environment.
聚乳酸(PLA)是一种有前途的定制适形 3D 打印放疗材料,但不同制造商之间的打印技术差异可能会增加治疗不确定性。本研究旨在评估来自不同制造商的各种 3D 打印 PLA 样本之间的一致性。
从多个商业 3D 打印服务中获取尺寸为 5×5×1cm、填充率为 100%的样本打印件。对所有样本进行 CT 扫描,以确定平均亨氏单位(HU)值和物理密度。对于光子和电子,获得等效厚度系数(CET),并将其与 Elekta Monaco v5.11 中的 TPS 计算进行剂量衰减比较。
一些样本的边缘翘曲高达 1.5mm,内部存在广泛的放射学缺陷,只有通过 CT 扫描才能检测到。物理密度范围为 1.06 至 1.22g/cm3,HU 值范围为-5.1 至 221.0 HU。测量的 CET 值范围为 0.95 至 1.17,TPS 剂量计算与 CET 的变化一致。对于每 1cm 的打印适形物,电子 R50 和 R90 会偏移多达 2mm,这是一个具有临床意义的发现。光子表面剂量变化高达 3%,而深度剂量在 1%以内。
3D 打印 PLA 之间的密度、HU 和 CET 值在样本和制造商之间可能存在相当大的差异。希望外包 3D 打印适形物的中心将受益于与制造商进行清晰、开放的沟通,并在将其引入临床环境之前进行严格的 QA 检查。