University of Manchester, Manchester Academic Health Science Centre, The Christie NHS Foundation Trust, Wilmslow Road, Manchester M20 4BX, United Kingdom.
Authors contributed equally.
Phys Med Biol. 2020 Jun 3;65(10):10NT02. doi: 10.1088/1361-6560/ab8078.
The lack of rigorous quality standards in pre-clinical radiation dosimetry has renewed interest in the development of anthropomorphic phantoms. Using 3D printing customisable phantoms can be created to assess all parts of pre-clinical radiation research: planning, image guidance and treatment delivery. We present the full methodology, including material development and printing designs, for the production of a high spatial resolution, anatomically realistic heterogeneous small animal phantom. A methodology for creating and validating tissue equivalent materials is presented. The technique is demonstrated through the development of a bone-equivalent material. This material is used together with a soft-tissue mimicking ABS plastic filament to reproduce the corresponding structure geometries captured from a CT scan of a nude mouse. Air gaps are used to represent the lungs. Phantom validation was performed through comparison of the geometry and x-ray attenuation of CT images of the phantom and animal images. A 6.6% difference in the attenuation of the bone-equivalent material compared to the reference standard in softer beams (0.5 mm Cu HVL) rapidly decreases as the beam is hardened. CT imaging shows accurate (sub-millimetre) reproduction of the skeleton (Distance-To-Agreement 0.5 mm ± 0.4 mm) and body surface (0.7 mm ± 0.5 mm). Histograms of the voxel intensity profile of the phantom demonstrate suitable similarity to those of both the original mouse image and that of a different animal. We present an approach for the efficient production of an anthropomorphic phantom suitable for the quality assurance of pre-clinical radiotherapy. Our design and full methodology are provided as open source to encourage the pre-clinical radiobiology community to adopt a common QA standard.
临床前放射剂量学中缺乏严格的质量标准,这重新引起了人们对人体模型的开发兴趣。使用 3D 打印可定制的模型,可以评估临床前放射研究的所有部分:规划、图像引导和治疗实施。我们提出了完整的方法,包括材料开发和打印设计,用于制作高空间分辨率、解剖逼真的异质小动物模型。提出了创建和验证组织等效材料的方法。该技术通过开发骨等效材料得到了证明。该材料与软组织模拟 ABS 塑料丝一起使用,以再现从裸鼠 CT 扫描中捕获的相应结构几何形状。空气间隙用于表示肺。通过比较模型和动物的 CT 图像的几何形状和 X 射线衰减来进行幻影验证。与较软束(0.5 毫米 Cu HVL)中的参考标准相比,骨等效材料的衰减率差异为 6.6%,随着射线变硬而迅速减小。CT 成像显示骨骼(距离一致性 0.5 毫米±0.4 毫米)和体表面(0.7 毫米±0.5 毫米)的精确(亚毫米)再现。模型体素强度分布的直方图表明与原始小鼠图像和其他动物的图像具有适当的相似性。我们提出了一种用于制作适合临床前放射治疗质量保证的人体模型的有效方法。我们的设计和完整的方法都作为开源提供,以鼓励临床前放射生物学界采用通用的 QA 标准。