Department of Physics, Faculty of Sciences, Setif1 University-Ferhat Abbas, Setif, Algeria.
Laboratory of Dosing, Analysis and Characterization with High Resolution, Setif1 University-Ferhat Abbas, Setif, Algeria.
Technol Cancer Res Treat. 2024 Jan-Dec;23:15330338241266479. doi: 10.1177/15330338241266479.
In external radiotherapy, dose boluses and compensators are used for treatment of irregular facial topography surfaces. In such cases, skewed isodose curves need to be addressed using a bolus that gives the deep dose distribution a shape adapted to the anatomical structures to be protected or irradiated. The combination of 3D modeling and printing technologies is a promising alternative to the conventional inaccurate and uncomfortable bolus fabrication technique. In this work, the proposed technologies will be used in the design and fabrication of high-performance and high-accuracy boluses that respond to the main constraints on metrology, adhesion to the patient's surface, comfort, and dose delivery. As a first phase in the implementation of the proposed solution, 3D printing materials, to be used in the fabrication of radiotherapy boluses, were selected and characterized to check how they respond to the required criteria on functionality, safety, and quality. The obtained results show that among the studied materials, thermoplastic polyurethane (TPU) was found to be slightly more suitable than polylactic acid (PLA) for the fabrication of 3D printing boluses but for some kinds of treatments, PLA may be preferred despite its relative rigidity. In this work, procedures for dose bolus fabrication were proposed, and necessary data were obtained for some available 3D printing materials (TPU and PLA) that can be used for targeted applications. This achievement is a major step toward the final implementation of 3D modeling and printing technologies for the efficient fabrication of radiotherapy dose boluses.
在外部放射治疗中,剂量 bolus 和补偿器用于治疗不规则的面部地形表面。在这种情况下,需要使用 bolus 来解决倾斜的等剂量曲线,该 bolus 使深部剂量分布适应要保护或照射的解剖结构的形状。3D 建模和打印技术的结合是对传统不准确且不舒适的 bolus 制造技术的有前途的替代方案。在这项工作中,所提出的技术将用于设计和制造高性能和高精度的 bolus,以满足计量学、与患者表面的附着力、舒适性和剂量传递的主要限制。作为实施所提出的解决方案的第一阶段,选择了用于放射治疗 bolus 制造的 3D 打印材料,并对其进行了表征,以检查它们如何响应功能、安全性和质量方面的要求标准。所得结果表明,在所研究的材料中,热塑性聚氨酯(TPU)比聚乳酸(PLA)稍微更适合于制造 3D 打印 bolus,但对于某些类型的治疗,尽管 PLA 相对刚性较大,仍可能首选 PLA。在这项工作中,提出了剂量 bolus 制造的程序,并为一些可用的 3D 打印材料(TPU 和 PLA)获得了必要的数据,这些材料可用于针对特定应用。这一成就朝着最终实现 3D 建模和打印技术在放射治疗剂量 bolus 高效制造中的应用迈出了重要一步。