首页> 外文期刊>International journal of hyperthermia: The official journal of European Society for Hyperthermic Oncology, North American Hyperthermia Group >A heterogeneous tissue model for treatment planning for magnetic resonance-guided laser interstitial thermal therapy
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A heterogeneous tissue model for treatment planning for magnetic resonance-guided laser interstitial thermal therapy

机译:用于磁共振引导激光间隙热疗治疗计划的异质组织模型

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We evaluated a physics-based model for planning for magnetic resonance-guided laser interstitial thermal therapy for focal brain lesions. Linear superposition of analytical point source solutions to the steady-state Pennes bioheat transfer equation simulates laser-induced heating in brain tissue. The line integral of the photon attenuation from the laser source enables computation of the laser interaction with heterogeneous tissue. Magnetic resonance thermometry data sets (n?=?31) were used to calibrate and retrospectively validate the model’s thermal ablation prediction accuracy, which was quantified by the Dice similarity coefficient (DSC) between model-predicted and measured ablation regions (T??57?°C). A Gaussian mixture model was used to identify independent tissue labels on pre-treatment anatomical magnetic resonance images. The tissue-dependent optical attenuation coefficients within these labels were calibrated using an interior point method that maximises DSC agreement with thermometry. The distribution of calibrated tissue properties formed a population model for our patient cohort. Model prediction accuracy was cross-validated using the population mean of the calibrated tissue properties. A homogeneous tissue model was used as a reference control. The median DSC values in cross-validation were 0.829 for the homogeneous model and 0.840 for the heterogeneous model. In cross-validation, the heterogeneous model produced a DSC higher than that produced by the homogeneous model in 23 of the 31 brain lesion ablations. Results of a paired, two-tailed Wilcoxon signed-rank test indicated that the performance improvement of the heterogeneous model over that of the homogeneous model was statistically significant (p??0.01).
机译:我们评估了基于物理的模型,以规划磁共振引导下的激光间质热疗法治疗局灶性脑部病变。稳态Pennes生物热传递方程的分析点源解的线性叠加,模拟了激光诱导的脑组织加热。来自激光源的光子衰减的线积分使得能够计算激光与异质组织的相互作用。磁共振测温数据集(n≥31)用于校准和追溯验证模型的热消融预测精度,该精度由模型预测的消融区域和测量的消融区域之间的Dice相似系数(DSC)进行量化(T≥2)。 57°C)。使用高斯混合模型在治疗前的解剖磁共振图像上识别独立的组织标记。这些标记中与组织有关的光学衰减系数是使用内点法校准的,该方法可以使DSC与测温法的一致性最大化。校准后的组织特性的分布形成了我们患者队列的种群模型。使用校正后的组织属性的总体平均值对模型预测的准确性进行交叉验证。均质组织模型用作参考对照。交叉验证中的均值DSC值对于同类模型为0.829,对于异构模型为0.840。在交叉验证中,在31种脑部病变消融中,有23种的异质模型产生的DSC高于同质模型产生的DSC。成对的两尾Wilcoxon符号秩检验的结果表明,异质模型的性能改进比同质模型的改进具有统计学意义(p <0.01)。

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