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A Bayesian pharmacometric approach for personalized medicine — A proof of concept study with simulated data

机译:贝叶斯药理学方法用于个性化药物—使用模拟数据进行的概念验证研究

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The objective of this research program is to optimize drug dose regimen for an individual, using minimally invasive clinical testing, in order to reduce both the total cost of treatment and the risk for over or under-medication using a Bayesian modeling approach. The challenge is to extract the PharmacoKinetic/PharmacoDynamic(PK/PD) parameters for an individual from population level plasma concentration information gathered in clinical trials along with one or two plasma samples from an individual and use these personalized parameters in determining most appropriate dose regimen for a specific patient. In this study we illustrate the plausibility of our methodology through a proof-of-concept study with simulated data.
机译:该研究计划的目标是使用微创临床测试为个体优化药物剂量方案,以降低总治疗成本以及使用贝叶斯建模方法降低药物过量或不足的风险。面临的挑战是从临床试验中收集到的人群水平血浆浓度信息中,提取一个人的PharmacoKinetic / PharmacoDynamic(PK / PD)参数,以及一个人的一两个血浆样品,并使用这些个性化参数来确定最合适的剂量方案特定的患者。在这项研究中,我们通过使用模拟数据的概念验证研究来说明我们方法论的合理性。

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