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基于切伦科夫辐射的外照射放射治疗浅层剂量成像用兆伏 X 射线束。

Superficial dosimetry imaging based on Čerenkov emission for external beam radiotherapy with megavoltage x-ray beam.

机构信息

Department of Physics and Astronomy, Dartmouth College, Hanover, New Hampshire 03755 and Thayer School of Engineering, Dartmouth College, Hanover, New Hampshire 03755.

出版信息

Med Phys. 2013 Oct;40(10):101914. doi: 10.1118/1.4821543.

Abstract

PURPOSE

Čerenkov radiation emission occurs in all tissue, when charged particles (either primary or secondary) travel at velocity above the threshold for the Čerenkov effect (about 220 KeV in tissue for electrons). This study presents the first examination of optical Čerenkov emission as a surrogate for the absorbed superficial dose for MV x-ray beams.

METHODS

In this study, Monte Carlo simulations of flat and curved surfaces were studied to analyze the energy spectra of charged particles produced in different regions near the surfaces when irradiated by MV x-ray beams. Čerenkov emission intensity and radiation dose were directly simulated in voxelized flat and cylindrical phantoms. The sampling region of superficial dosimetry based on Čerenkov radiation was simulated in layered skin models. Angular distributions of optical emission from the surfaces were investigated. Tissue mimicking phantoms with flat and curved surfaces were imaged with a time domain gating system. The beam field sizes (50 × 50-200 × 200 mm(2)), incident angles (0°-70°) and imaging regions were all varied.

RESULTS

The entrance or exit region of the tissue has nearly homogeneous energy spectra across the beam, such that their Čerenkov emission is proportional to dose. Directly simulated local intensity of Čerenkov and radiation dose in voxelized flat and cylindrical phantoms further validate that this signal is proportional to radiation dose with absolute average discrepancy within 2%, and the largest within 5% typically at the beam edges. The effective sampling depth could be tuned from near 0 up to 6 mm by spectral filtering. The angular profiles near the theoretical Lambertian emission distribution for a perfect diffusive medium, suggesting that angular correction of Čerenkov images may not be required even for curved surface. The acquisition speed and signal to noise ratio of the time domain gating system were investigated for different acquisition procedures, and the results show there is good potential for real-time superficial dose monitoring. Dose imaging under normal ambient room lighting was validated, using gated detection and a breast phantom.

CONCLUSIONS

This study indicates that Čerenkov emission imaging might provide a valuable way to superficial dosimetry imaging in real time for external beam radiotherapy with megavoltage x-ray beams.

摘要

目的

当带电粒子(无论是初级还是次级)的速度超过切伦科夫效应的阈值(对于电子,在组织中约为 220keV)时,会在所有组织中发生切伦科夫辐射发射。本研究首次检查了光学切伦科夫发射作为 MV X 射线束吸收表面剂量的替代物。

方法

在这项研究中,对平面和曲面进行了蒙特卡罗模拟,以分析在 MV X 射线束照射下,在表面附近不同区域产生的带电粒子的能谱。在体素化的平面和圆柱形体模中直接模拟切伦科夫发射强度和辐射剂量。基于切伦科夫辐射的浅表剂量采样区域在分层皮肤模型中进行了模拟。研究了表面光学发射的角分布。用时域门控系统对具有平面和曲面的组织模拟体模进行了成像。改变了光束场尺寸(50×50-200×200mm2)、入射角(0°-70°)和成像区域。

结果

组织的入射或出射区域在整个光束中具有几乎均匀的能谱,使得它们的切伦科夫发射与剂量成正比。在体素化的平面和圆柱形体模中直接模拟的局部切伦科夫强度和辐射剂量进一步验证了该信号与辐射剂量成正比,绝对平均差异在 2%以内,最大差异通常在光束边缘为 5%。通过光谱滤波可以将有效采样深度从接近 0 调至 6mm。在接近完美漫射介质的理论朗伯发射分布的角分布附近,表明即使对于曲面也可能不需要对切伦科夫图像进行角度校正。对不同的采集程序研究了时域门控系统的采集速度和信噪比,结果表明实时浅表剂量监测具有很好的潜力。使用门控检测和乳房体模验证了正常环境光照下的剂量成像。

结论

本研究表明,切伦科夫发射成像可能为使用 MV X 射线束进行外部束放射治疗的实时浅表剂量成像提供一种有价值的方法。

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