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用于图像引导临床前质子放射研究中离子声质量保证的多模态 3D 打印鼠体的制作和特性描述。

Fabrication and characterization of a multimodal 3D printed mouse phantom for ionoacoustic quality assurance in image-guided pre-clinical proton radiation research.

机构信息

Department of Medical Physics, Ludwig-Maximilians-Universität München, Munich, Germany.

Department of Radiation Oncology, University Hospital, LMU Munich, Munich, Germany.

出版信息

Phys Med Biol. 2022 Oct 3;67(20). doi: 10.1088/1361-6560/ac9031.

Abstract

Image guidance and precise irradiation are fundamental to ensure the reliability of small animal oncology studies. Accurate positioning of the animal and the in-beam monitoring of the delivered radio-therapeutic treatment necessitate several imaging modalities. In the particular context of proton therapy with a pulsed beam, information on the delivered dose can be retrieved by monitoring the thermoacoustic waves resulting from the brief and local energy deposition induced by a proton beam (ionoacoustics). The objective of this work was to fabricate a multimodal phantom (x-ray, proton, ultrasound, and ionoacoustics) allowing for sufficient imaging contrast for all the modalities.The phantom anatomical parts were extracted from mouse computed tomography scans and printed using polylactic acid (organs) and a granite/polylactic acid composite (skeleton). The anatomical pieces were encapsulated in silicone rubber to ensure long term stability. The phantom was imaged using x-ray cone-beam computed tomography, proton radiography, ultrasound imaging, and monitoring of a 20 MeV pulsed proton beam using ionoacoustics.The anatomical parts could be visualized in all the imaging modalities validating the phantom capability to be used for multimodal imaging. Ultrasound images were simulated from the x-ray cone-beam computed tomography and co-registered with ultrasound images obtained before the phantom irradiation and low-resolution ultrasound images of the mouse phantom in the irradiation position, co-registered with ionoacoustic measurements. The latter confirmed the irradiation of a tumor surrogate for which the reconstructed range was found to be in reasonable agreement with the expectation.This study reports on a realistic small animal phantom which can be used to investigate ionoacoustic range (or dose) verification together with ultrasound, x-ray, and proton imaging. The co-registration between ionoacoustic reconstructions of the impinging proton beam and x-ray imaging is assessed for the first time in a pre-clinical scenario.

摘要

图像引导和精确照射是确保小动物肿瘤学研究可靠性的基础。为了准确定位动物并在束内监测所提供的放射治疗,需要使用多种成像方式。在质子治疗中,脉冲束的情况下,通过监测由质子束(离子声学)短暂且局部能量沉积引起的热声波,可以获取所传递剂量的信息。这项工作的目的是制造一种多模态体模(X 射线、质子、超声和离子声学),为所有模态提供足够的成像对比度。体模的解剖部分从老鼠的计算机断层扫描中提取出来,使用聚乳酸(器官)和花岗岩/聚乳酸复合材料(骨骼)进行打印。解剖部件被封装在硅橡胶中以确保长期稳定性。使用 X 射线锥形束计算机断层扫描、质子射线照相术、超声成像以及使用离子声学监测 20 MeV 脉冲质子束对体模进行了成像。所有成像模式都可以看到解剖部分,验证了体模用于多模态成像的能力。从 X 射线锥形束计算机断层扫描模拟了超声图像,并与体模照射前获得的超声图像以及照射位置的老鼠体模的低分辨率超声图像进行了配准,与离子声学测量结果进行了配准。后者证实了肿瘤替代物的照射,重建范围与预期值相符。这项研究报告了一种现实的小动物体模,可用于研究离子声学范围(或剂量)验证,同时进行超声、X 射线和质子成像。首次在临床前场景中评估了撞击质子束的离子声重建与 X 射线成像之间的配准。

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