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A Predictive Mathematical Modeling Approach for the Study of Doxorubicin Treatment in Triple Negative Breast Cancer

机译:阿霉素治疗三阴性乳腺癌的预测数学建模方法

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摘要

Doxorubicin forms the basis of chemotherapy regimens for several malignancies, including triple negative breast cancer (TNBC). Here, we present a coupled experimental/modeling approach to establish an in vitro pharmacokinetic/pharmacodynamic model to describe how the concentration and duration of doxorubicin therapy shape subsequent cell population dynamics. This work features a series of longitudinal fluorescence microscopy experiments that characterize (1) doxorubicin uptake dynamics in a panel of TNBC cell lines, and (2) cell population response to doxorubicin over 30 days. We propose a treatment response model, fully parameterized with experimental imaging data, to describe doxorubicin uptake and predict subsequent population dynamics. We found that a three compartment model can describe doxorubicin pharmacokinetics, and pharmacokinetic parameters vary significantly among the cell lines investigated. The proposed model effectively captures population dynamics and translates well to a predictive framework. In a representative cell line (SUM-149PT) treated for 12 hours with doxorubicin, the mean percent errors of the best-fit and predicted models were 14% (±10%) and 16% (±12%), which are notable considering these statistics represent errors over 30 days following treatment. More generally, this work provides both a template for studies quantitatively investigating treatment response and a scalable approach toward predictions of tumor response in vivo.
机译:阿霉素构成了包括三阴性乳腺癌(TNBC)在内的多种恶性肿瘤化疗方案的基础。在这里,我们提出一种耦合的实验/建模方法来建立体外药代动力学/药效学模型,以描述阿霉素治疗的浓度和持续时间如何影响随后的细胞种群动态。这项工作的特点是一系列纵向荧光显微镜实验,这些实验表征(1)一组TNBC细胞系中阿霉素的吸收动力学,以及(2)30天以上细胞对阿霉素的反应。我们提出了一个治疗反应模型,该模型完全用实验成像数据进行了参数化,以描述阿霉素的吸收并预测随后的种群动态。我们发现一个三室模型可以描述阿霉素的药代动力学,并且在所研究的细胞系之间,药代动力学参数差异很大。所提出的模型有效地捕获了人口动态,并很好地转化为预测框架。在用阿霉素处理12小时的代表性细胞系(SUM-149PT)中,最佳拟合模型和预测模型的平均误差百分比为14%(±10%)和16%(±12%),这在考虑到这些统计数据代表治疗后30天内的错误。更一般而言,这项工作既提供了用于定量研究治疗反应的研究模板,又提供了可预测体内肿瘤反应的可扩展方法。

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