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In silico oncology: Exploiting clinical studies to clinically adapt and validate multiscale oncosimulators

机译:计算机肿瘤学:利用临床研究来临床适应和验证多尺度肿瘤模拟仪

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This paper presents a brief outline of the notion and the system of oncosimulator in conjunction with a high level description of the basics of its core multiscale model simulating clinical tumor response to treatment. The exemplary case of lung cancer preoperatively treated with a combination of chemotherapeutic agents is considered. The core oncosimulator model is based on a primarily top-down, discrete entity - discrete event multiscale simulation approach. The critical process of clinical adaptation of the model by exploiting sets of multiscale data originating from clinical studies/trials is also outlined. Concrete clinical adaptation results are presented. The adaptation process also conveys important aspects of the planned clinical validation procedure since the same type of multiscale data - although not the same data itself- is to be used for clinical validation. By having exploited actual clinical data in conjunction with plausible literature-based values of certain model parameters, a realistic tumor dynamics behavior has been demonstrated. The latter supports the potential of the specific oncosimulator to serve as a personalized treatment optimizer following an eventually successful completion of the clinical adaptation and validation process.
机译:本文简要介绍了癌模拟仪的概念和系统,并对其模拟临床肿瘤对治疗反应的核心多尺度模型的基础进行了高级描述。考虑了用化学治疗剂联合术前治疗的肺癌的示例性病例。核心模拟仿真器模型主要基于自上而下的离散实体-离散事件多尺度仿真方法。还概述了通过利用源自临床研究/试验的多尺度数据集对模型进行临床适应的关键过程。提出了具体的临床适应结果。适应过程还传达了计划中的临床验证程序的重要方面,因为相同类型的多尺度数据(尽管本身不是相同数据)将用于临床验证。通过利用实际的临床数据以及某些模型参数的合理的基于文献的值,已经证明了现实的肿瘤动力学行为。在最终成功完成临床适应和验证过程之后,后者支持特定的癌模拟药物作为个性化治疗优化剂的潜力。

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