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提高癌性肿瘤治疗中的剂量测定精度:瓦里安医疗直线加速器6兆伏和12兆伏光子束的伽马指数验证及蒙特卡罗模拟

Enhancing dosimetric precision in the treatment of cancerous tumors: Gamma Index validation and Monte Carlo simulations of 6 and 12 megavoltage photon beams from Varian Medical linear accelerators.

作者信息

Alshehri Ali H D

机构信息

Department of Radiological Sciences, College of Applied Medical Sciences, Najran University, Najran, Saudi Arabia.

出版信息

Front Oncol. 2025 Aug 20;15:1573166. doi: 10.3389/fonc.2025.1573166. eCollection 2025.

Abstract

INTRODUCTION

The accuracy of dose delivery in radiotherapy is paramount to maximize tumor control while minimizing damage to surrounding healthy tissues. This study presents a comprehensive analysis of gamma index validation in the treatment of cancerous tumors using Monte Carlo simulations with GAMOS and GATE codes on a Varian medical linear accelerator. By leveraging the MC method's robust statistical capabilities, the precision of dose distributions in external radiotherapy is aimed to be enhanced. The study specifically evaluates the effects of different field sizes and percentage depth dose (PDD) to provide a thorough validation framework.

METHODS

The GAMOS and GATE codes were implemented to simulate dose distributions within various phantom models, including water and anthropomorphic phantoms. These simulations were conducted using a Varian linear accelerator with a 6 and 12 megavoltage photon beams. The dose distributions obtained from the simulations were then compared against those calculated by the treatment planning system (TPS) using the gamma index method with 3%/3mm criteria.

RESULTS AND DISCUSSION

The results demonstrated a high degree of accuracy in the simulated dose distributions, with gamma index pass rates exceeding 94% for most configurations. The comparative analysis between GAMOS and GATE showed consistent performance, with minor deviations attributable to differences in the underlying simulation algorithms. Furthermore, the study revealed significant insights into the impact of varying field sizes on dose distribution accuracy. The PDD analysis indicated that both GAMOS and GATE could reliably reproduce the TPS-calculated dose profiles, with deviations within clinically acceptable limits. These findings underscore the potential of MC simulations to improve the accuracy and reliability of radiotherapy treatment plans. By validating the gamma index for different field sizes and PDD, this study provides a robust framework for enhancing treatment efficacy and patient safety in clinical practice. The integration of GAMOS and GATE in routine clinical workflows could lead to more precise and individualized radiotherapy treatments, ultimately improving patient outcomes.

摘要

引言

放射治疗中剂量传递的准确性对于在最大限度控制肿瘤的同时将对周围健康组织的损害降至最低至关重要。本研究对使用Varian医用直线加速器上的GAMOS和GATE代码进行蒙特卡罗模拟治疗癌性肿瘤时的伽马指数验证进行了全面分析。通过利用蒙特卡罗方法强大的统计能力,旨在提高外照射放疗中剂量分布的精度。该研究具体评估了不同射野大小和百分深度剂量(PDD)的影响,以提供一个全面的验证框架。

方法

采用GAMOS和GATE代码模拟各种体模模型(包括水模和人体模)内的剂量分布。这些模拟使用配备6兆伏和12兆伏光子束的Varian直线加速器进行。然后使用3%/3毫米标准的伽马指数方法,将模拟得到的剂量分布与治疗计划系统(TPS)计算的剂量分布进行比较。

结果与讨论

结果表明模拟剂量分布具有高度准确性,大多数配置的伽马指数通过率超过94%。GAMOS和GATE之间的对比分析显示性能一致,细微偏差归因于基础模拟算法的差异。此外,该研究揭示了不同射野大小对剂量分布准确性影响的重要见解。PDD分析表明,GAMOS和GATE都能可靠地重现TPS计算的剂量曲线,偏差在临床可接受范围内。这些发现强调了蒙特卡罗模拟在提高放射治疗计划准确性和可靠性方面的潜力。通过验证不同射野大小和PDD的伽马指数,本研究为提高临床实践中的治疗效果和患者安全性提供了一个强大的框架。将GAMOS和GATE整合到常规临床工作流程中可导致更精确和个性化的放射治疗,最终改善患者预后。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/59c1/12405406/3919c1890eee/fonc-15-1573166-g001.jpg

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