论文标题

综合生物物理建模和图像分析:应用于神经肿瘤学

Integrated Biophysical Modeling and Image Analysis: Application to Neuro-Oncology

论文作者

Mang, Andreas, Bakas, Spyridon, Subramanian, Shashank, Davatzikos, Christos, Biros, George

论文摘要

中枢神经系统(CNS)肿瘤具有非常异质的组织学,分子和放射线景观,从而使其精确的特征具有挑战性。生物物理建模和放射线学的快速生长领域在更好地表征肿瘤的分子,空间和时间异质性方面表现出了希望。 Integrative analysis of CNS tumors, including clinically-acquired multi-parametric magnetic resonance imaging (mpMRI) and the inverse problem of calibrating biophysical models to mpMRI data, assists in identifying macroscopic quantifiable tumor patterns of invasion and proliferation, potentially leading to improved (i) detection/segmentation of tumor sub-regions, and (ii) computer-aided诊断/预后/预测性建模。本文介绍了(i)生物物理生长建模和仿真,(ii)模型校准的逆问题,(iii)它们与成像工作流程的集成以及(iv)在临床上相关的研究中的应用。我们预计,这种定量综合分析甚至可能会对世界卫生组织(WHO)对中枢神经系统肿瘤进行分类的未来修订,最终改善患者的生存前景。

Central nervous system (CNS) tumors come with the vastly heterogeneous histologic, molecular and radiographic landscape, rendering their precise characterization challenging. The rapidly growing fields of biophysical modeling and radiomics have shown promise in better characterizing the molecular, spatial, and temporal heterogeneity of tumors. Integrative analysis of CNS tumors, including clinically-acquired multi-parametric magnetic resonance imaging (mpMRI) and the inverse problem of calibrating biophysical models to mpMRI data, assists in identifying macroscopic quantifiable tumor patterns of invasion and proliferation, potentially leading to improved (i) detection/segmentation of tumor sub-regions, and (ii) computer-aided diagnostic/prognostic/predictive modeling. This paper presents a summary of (i) biophysical growth modeling and simulation, (ii) inverse problems for model calibration, (iii) their integration with imaging workflows, and (iv) their application on clinically-relevant studies. We anticipate that such quantitative integrative analysis may even be beneficial in a future revision of the World Health Organization (WHO) classification for CNS tumors, ultimately improving patient survival prospects.

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