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腔内光动力疗法中移动光源的蒙特卡罗模拟

A Monte Carlo simulation for Moving Light Source in Intracavity PDT.

作者信息

Parilov Evgueni, Beeson Karl, Potasek Mary, Zhu Timothy, Sun Hongjing, Sourvanos Dennis

机构信息

Simphotek, Inc., 211 Warren St., Newark, NJ 07103.

Perlman School of Medicine, University of Pennsylvania, Philadelphia, Pennsylvania.

出版信息

Proc SPIE Int Soc Opt Eng. 2023 Jan-Feb;12359. doi: 10.1117/12.2649538. Epub 2023 Mar 14.

Abstract

We developed a simulation method for modeling the light fluence delivery in intracavity Photodynamic Therapy () for pleural lung cancer using a moving light source. Due to the large surface area of the pleural lung cavity, the light source needs to be moved to deliver a uniform dose around the entire cavity. While multiple fixed detectors are used for dosimetry at a few locations, an accurate simulation of light fluence and fluence rate is still needed for the rest of the cavity. We extended an existing Monte Carlo (MC) based light propagation solver to support moving light sources by densely sampling the continuous light source trajectory and assigning the proper number of photon packages launched along the way. The performance of Simphotek GPU CUDA-based implementation of the method - PEDSy-MC - has been demonstrated on a life-size lung-shaped phantom, custom printed for testing icav-PDT navigation system at the Perlman School of Medicine () - calculations completed under a minute (for some cases) and within minutes have been achieved. We demonstrate results within a 5% error of the analytic solution for multiple detectors in the phantom. PEDSy-MC is accompanied by a dose-cavity visualization tool that allows real-time inspection of dose values of the treated cavity in 2D and 3D, which will be expanded to ongoing clinical trials at PSM. PSM has developed a technology to measure 8-detectors in a pleural cavity phantom using Photofrin-mediated PDT that has been used during validation.

摘要

我们开发了一种模拟方法,用于对使用移动光源的胸膜肺癌腔内光动力疗法(icav-PDT)中的光通量传递进行建模。由于胸膜肺腔的表面积较大,需要移动光源以在整个腔内提供均匀剂量。虽然在几个位置使用多个固定探测器进行剂量测定,但对于腔的其余部分仍需要准确模拟光通量和通量率。我们扩展了现有的基于蒙特卡罗(MC)的光传播求解器,通过对连续光源轨迹进行密集采样并分配沿途发射的适当数量的光子包来支持移动光源。该方法基于Simphotek GPU CUDA的实现——PEDSy-MC——已在为佩尔曼医学院(PSM)测试icav-PDT导航系统而定制打印的真人大小的肺形体模上得到验证,计算在一分钟内(某些情况下)完成,几分钟内即可完成。我们展示了体模中多个探测器的分析解误差在5%以内的结果。PEDSy-MC附带了一个剂量腔可视化工具,可实时检查治疗腔在二维和三维中的剂量值,该工具将扩展到PSM正在进行的临床试验中。PSM开发了一种技术,使用在验证过程中使用的Photofrin介导的PDT测量胸膜腔体模中的8个探测器。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1983/10194003/d1e520b8932c/nihms-1897545-f0001.jpg

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