放射治疗患者特异性生物力学膈-肋呼吸运动模型

IF 3.8 Q2 ENGINEERING, BIOMEDICAL
Hamid Ladjal;Michael Beuve;Behzad Shariat
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引用次数: 0

摘要

呼吸诱导的器官运动是肺癌放射治疗的一个技术挑战。呼吸是由两块独立的肌肉控制的:胸肌和膈肌。它们的运动建模是建立呼吸运动模型的重要步骤。隔膜力和肋骨位移的振幅是病人特有的,取决于病人的几何和生理特征。这篇文章提出了一个患者特异性的生物力学模型(PSBM)的隔膜,以及肋骨的运动学。为了确定每位患者在整个呼吸周期内膈肌比力的合适值,我们采用了逆有限元(inverse finite element, FE)分析方法,将实验结果与有限元模拟结果进行匹配。肋骨运动学直接从四维计算机断层扫描(CT)图像中提取和计算。研究了单元类型、有限变形和弹性对计算精度和计算时间的影响。结果表明,考虑肋骨运动学的有限元模型可以准确预测隔膜运动,隔膜/肺接触区域的平均表面误差小于$2.2\pm 2.1mm$。这构成了生物力学患者特异性呼吸系统建模的第一步,以引导肺和肺肿瘤运动进行外束放射治疗(EBRT)。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Patient-Specific Biomechanical Diaphragm-Ribs Respiratory Motion Model for Radiation Therapy
Respiratory-induced organ motion is a technical challenge to radiation therapy for lung cancer. Breathing is controlled by two independent muscles: the thorax and diaphragm muscles. The modeling of their action constitutes an important step for the respiratory motion model. The amplitude of the diaphragm forces and ribs displacement are patient-specific and depends on geometrical and physiological characteristics of the patient. This article presents a patient-specific bio-mechanical model (PSBM) of the diaphragm, as well as ribs kinematics. To determine the appropriate values of specific diaphragm forces for each patient, during a whole respiratory cycle, inverse finite element (FE) analysis methodology has been implemented to match the experimental results to the FE simulation results. Ribs kinematics extracted and calculated directly from 4D Computed Tomography (CT) scan images. We have investigated the effect of element type, finite deformation and elasticity on the accuracy and computation time. The results demonstrate that the proposed FE model including ribs kinematics can accurately predict the diaphragm motion with an average surface error in diaphragm/lungs contact region less than $2.2\pm 2.1mm$ . This constitutes first steps for biomechanical patient-specific of the respiratory system modeling to pilot lungs and lung tumor motion for External Beam Radiation Therapy (EBRT).
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CiteScore
6.80
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