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A Proposed Paradigm Shift in Initializing Cancer Predictive Models with DCE-MRI Based PK Parameters: A Feasibility Study

机译:基于DCE-MRI的PK参数初始化癌症预测模型的拟议范式转移:可行性研究

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摘要

Glioblastoma multiforme is the most aggressive type of glioma and the most common malignant primary intra-axial brain tumor. In an effort to predict the evolution of the disease and optimize therapeutical decisions, several models have been proposed for simulating the growth pattern of glioma. One of the latest models incorporates cell proliferation and invasion, angiogenic net rates, oxygen consumption, and vasculature. These factors, particularly oxygenation levels, are considered fundamental factors of tumor heterogeneity and compartmentalization. This paper focuses on the initialization of the cancer cell populations and vasculature based on imaging examinations of the patient and presents a feasibility study on vasculature prediction over time. To this end, pharmacokinetic parameters derived from dynamic contrast-enhanced magnetic resonance imaging using Toft’s model are used in order to feed the model. Ktrans is used as a metric of the density of endothelial cells (vasculature); at the same time, it also helps to discriminate distinct image areas of interest, under a set of assumptions. Feasibility results of applying the model to a real clinical case are presented, including a study on the effect of certain parameters on the pattern of the simulated tumor.
机译:多形胶质母细胞瘤是神经胶质瘤的最强类型,也是最常见的恶性原发性轴内脑肿瘤。为了预测疾病的进展并优化治疗决策,已经提出了几种模型来模拟神经胶质瘤的生长模式。最新模型之一包括细胞增殖和侵袭,血管生成净速率,耗氧量和脉管系统。这些因素,特别是氧合水平,被认为是肿瘤异质性和区室化的基本因素。本文基于对患者的影像学检查,着重于癌细胞群和脉管系统的初始化,并提出了随时间推移进行脉管系统预测的可行性研究。为此,使用了基于Toft模型的动态对比增强磁共振成像得出的药代动力学参数,以补充模型。 K trans 用作衡量内皮细胞(脉管系统)密度的指标;同时,它还有助于根据一组假设来区分感兴趣的不同图像区域。提出了将模型应用于实际临床病例的可行性结果,包括对某些参数对模拟肿瘤模式影响的研究。

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