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Linear-In-Flux-Expressions Methodology: Toward a Robust Mathematical Framework for Quantitative Systems Pharmacology Simulators

机译:流量线性表达方法论:建立定量系统药理学模拟器的稳健数学框架

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摘要

Quantitative Systems Pharmacology (QSP) modeling is increasingly used as a quantitative tool for advancing mechanistic hypotheses on the mechanism of action of a drug, and its pharmacological effect in relevant disease phenotypes, to enable linking the right drug to the right patient. Application of QSP models relies on creation of virtual populations for simulating scenarios of interest. Creation of virtual populations requires 2 important steps, namely, identification of a subset of model parameters that can be associated with a phenotype of disease and development of a sampling strategy from identified distributions of these parameters. We improve on existing sampling methodologies by providing a means of representing the structural relationship across model parameters and describing propagation of variability in the model. This gives a robust, systematic method for creating a virtual population. We have developed the Linear-In-Flux-Expressions (LIFE) method to simulate variability in patient pharmacokinetics and pharmacodynamics using relationships between parameters at baseline to create a virtual population. We demonstrate the importance of this methodology on a model of cholesterol metabolism. The LIFE methodology brings us a step closer toward improved QSP simulators through enhanced capture of the observed variability in drug and disease clinical data.
机译:定量系统药理学(QSP)建模越来越多地用作定量工具,以推进关于药物作用机理及其在相关疾病表型中的药理作用的机理假说,以使正确的药物与正确的患者联系起来。 QSP模型的应用依赖于创建虚拟种群来模拟感兴趣的场景。创建虚拟种群需要2个重要步骤,即,确定可以与疾病表型相关的模型参数子集,以及从这些参数的确定分布中发展采样策略。通过提供一种表示跨模型参数的结构关系并描述模型中变异性传播的方法,我们改进了现有的抽样方法。这提供了用于创建虚拟种群的可靠,系统的方法。我们已经开发了线性通量表达(LIFE)方法,可以使用基线参数之间的关系来模拟患者药代动力学和药效学的变异性,从而创建虚拟种群。我们证明了这种方法对胆固醇代谢模型的重要性。 LIFE方法论通过增强捕获药物和疾病临床数据中观察到的变异性,使我们向改进的QSP仿真器迈进了一步。

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