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A computational framework for the personalized clinical treatment of glioblastoma multiforme

机译:胶质母细胞瘤多形临床治疗的计算框架

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In this work, we develop a computational tool to predict the patient-specific evolution of a highly malignant brain tumour, the glioblastoma multiforme (GBM), and its response to therapy. A diffuse-interface mathematical model based on mixture theory is fed by clinical neuroimaging data that provide the anatomical and microstructural characteristics of the patient brain. The model is numerically solved using the finite element method, on the basis of suitable numerical techniques to deal with the resulting Cahn-Hilliard type equation with degenerate mobility and single-well potential. The results of simulations performed on the real geometry of a patient brain quantitatively showhowthe tumour expansion dependens on the local tissue structure.We also report the results of a sensitivity analysis concerning the effects of the different therapeutic strategies employed in the clinical Stupp protocol. The simulated results are in qualitative agreement with the observed evolution of GBM during growth, recurrence and response to treatment. Taken as a proof-of-concept, these results open the way to a novel personalized approach of mathematical tools in clinical oncology.
机译:在这项工作中,我们开发了一种计算工具,以预测高度恶性脑肿瘤,胶质母细胞瘤多形态(GBM)的患者特异性演变及其对治疗的反应。基于混合理论的漫射界面数学模型通过临床神经影像数据进行喂养,该数据提供患者脑的解剖学和微观结构特征。使用有限元方法进行数值求解的模型,基于合适的数值方法,以应对所得Cahn-Hilliard型方程具有退化迁移率和单井电位的CAHN-Hilliard型方程。对患者脑的真实几何形状进行的模拟结果定量地展示局部组织结构的肿瘤膨胀。我们还报告了关于临床概述临床概述的不同治疗策略的影响的敏感性分析结果。模拟结果与在生长,复发和对治疗的生长,复发和反应期间观察到的GBM演变的定性协议。被视为概念验证,这些结果对临床肿瘤学中的数学工具的新颖性方法开辟了道路。

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