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Population Pharmacokinetic Modeling in the Presence of Missing Time-Dependent Covariates: Impact of Body Weight on Pharmacokinetics of Paracetamol in Neonates

机译:缺少时间依赖性协变量的人群药代动力学建模:体重对新生儿扑热息痛药代动力学的影响

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摘要

Body weight is the primary covariate in pharmacokinetics of many drugs and dramatically changes during the first weeks of life of neonates. The objective of this study is to determine if missing body weights in preterm and term neonates affect estimates of model parameters and which methods can be used to improve performance of a population pharmacokinetic model of paracetamol. Data for our analysis were obtained from previously published studies on the pharmacokinetics of intravenous paracetamol in neonates. We adopted a population model of body weight change in neonates to implement three previously introduced methods of handling missing covariates based on data imputation, likelihood function modification, and full random effects modeling. All models were implemented in NONMEM 7.4, and population parameters were estimated using the FOCE method. Our major finding was that missing body weights minimally affect population estimates of pharmacokinetic parameters but do affect the covariate relationship parameters, particularly the one describing dependence of clearance on body weight. None of the tested methods changed estimates of between-subject variability nor impacted the predictive performance of the model. Our analysis shows that a modeling approach towards handling missing covariates allows borrowing information gathered in various studies as long as they target the same population. This approach is particularly useful for handling time-dependent missing covariates.
机译:体重是许多药物的药代动力学的主要协变量,在新生儿出生后的头几周内发生急剧变化。这项研究的目的是确定早产和足月新生儿的体重缺失是否会影响模型参数的估计,以及哪些方法可用于改善对乙酰氨基酚的总体药代动力学模型的性能。我们分析的数据来自先前发表的有关新生儿静脉内扑热息痛药代动力学的研究。我们采用了新生儿体重变化的总体模型,以基于数据估算,似然函数修改和完全随机效应模型来实施三种先前介绍的处理缺失协变量的方法。所有模型均在NONMEM 7.4中实现,并且使用FOCE方法估算了种群参数。我们的主要发现是,缺少体重对药代动力学参数的总体估计影响最小,但确实会影响协变量关系参数,特别是描述清除率对体重的依赖性的参数。所测试的方法均未改变受试者之间变异性的估计值,也不影响模型的预测性能。我们的分析表明,用于处理缺失协变量的建模方法可以借鉴各种研究中收集的信息,只要它们针对的是同一人群即可。这种方法对于处理时间相关的缺失协变量特别有用。

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