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使用临床超声阵列进行热声范围验证可将布拉格峰完美地共配准叠加到超声图像上。

Thermoacoustic range verification using a clinical ultrasound array provides perfectly co-registered overlay of the Bragg peak onto an ultrasound image.

作者信息

Patch S K, Kireeff Covo M, Jackson A, Qadadha Y M, Campbell K S, Albright R A, Bloemhard P, Donoghue A P, Siero C R, Gimpel T L, Small S M, Ninemire B F, Johnson M B, Phair L

机构信息

Department of Physics, UW-Milwaukee, 3135 N. Maryland Ave., Milwaukee, WI 53211, USA.

出版信息

Phys Med Biol. 2016 Aug 7;61(15):5621-38. doi: 10.1088/0031-9155/61/15/5621. Epub 2016 Jul 6.

Abstract

The potential of particle therapy due to focused dose deposition in the Bragg peak has not yet been fully realized due to inaccuracies in range verification. The purpose of this work was to correlate the Bragg peak location with target structure, by overlaying the location of the Bragg peak onto a standard ultrasound image. Pulsed delivery of 50 MeV protons was accomplished by a fast chopper installed between the ion source and the cyclotron inflector. The chopper limited the train of bunches so that 2 Gy were delivered in [Formula: see text]. The ion pulse generated thermoacoustic pulses that were detected by a cardiac ultrasound array, which also produced a grayscale ultrasound image. A filtered backprojection algorithm focused the received signal to the Bragg peak location with perfect co-registration to the ultrasound images. Data was collected in a room temperature water bath and gelatin phantom with a cavity designed to mimic the intestine, in which gas pockets can displace the Bragg peak. Phantom experiments performed with the cavity both empty and filled with olive oil confirmed that displacement of the Bragg peak due to anatomical change could be detected. Thermoacoustic range measurements in the waterbath agreed with Monte Carlo simulation within 1.2 mm. In the phantom, thermoacoustic range estimates and first-order range estimates from CT images agreed to within 1.5 mm.

摘要

由于射程验证存在误差,布拉格峰中聚焦剂量沉积所带来的粒子治疗潜力尚未得到充分发挥。本研究的目的是通过将布拉格峰的位置叠加到标准超声图像上,将布拉格峰位置与靶结构相关联。通过安装在离子源和回旋加速器偏转器之间的快速斩波器实现50 MeV质子的脉冲式输送。斩波器限制了束团序列,从而在[公式:见原文]内输送2 Gy剂量。离子脉冲产生热声脉冲,由心脏超声阵列检测,该阵列还生成灰度超声图像。一种滤波反投影算法将接收到的信号聚焦到布拉格峰位置,并与超声图像完美配准。数据在室温水浴和带有模拟肠道的腔室的明胶模型中收集,腔室内的气穴会使布拉格峰发生位移。在腔室为空和充满橄榄油的情况下进行的模型实验证实,能够检测到由于解剖结构变化导致的布拉格峰位移。水浴中的热声射程测量结果与蒙特卡罗模拟结果在1.2毫米范围内一致。在模型中,热声射程估计值与CT图像的一阶射程估计值在1.5毫米范围内一致。

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