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NONMEM and NPEM2 population modeling: a comparison using tobramycin data in neonates.

机译:NONMEM和NPEM2人口模型:新生儿使用妥布霉素数据的比较。

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Nonlinear mixed effects modeling (NONMEM) and nonparametric expectation maximization (NPEM2) have both been used in population modeling of tobramycin. We compared both methods for differences in population pharmacokinetic parameters in relation to error models used. Predictive performance was compared between models. A group of 470 neonates who had received tobramycin according to a gestational age (GA)-dependent dosing interval was analyzed according to a one-compartment model with NONMEM and NPEM2. Additional models were constructed where the assay error pattern in NPEM2 mimicked NONMEM residual error and vice versa. Individual pharmacokinetic parameter estimates were compared. Predictive performance was evaluated in a separate group of 61 patients. Population estimates and variation coefficients (CV) for optimal models were NONMEM K(el) 0.071 h(-1) (27%), V(d) 0.59 L/kg (9%); NPEM2 K(el) 0.079 h(-1) (42%), V(d) 0.65 L/kg (48%). Forcing NONMEM to use the NPEM2 error pattern as residual error or vice versa resulted in smaller differences in CVs of the estimates. NONMEM gave less bias (P < 0.05) than NPEM2 and comparable precision with this approach. In conclusion NONMEM and NPEM2 are dissimilar in population estimates. Differences in ranges of pharmacokinetic parameter estimates between NONMEM and NPEM2 are largely determined by the method of incorporating error patterns in both programs.
机译:非线性混合效应模型(NONMEM)和非参数期望最大化(NPEM2)都已在妥布霉素的种群模型中使用。我们比较了两种方法相对于使用的误差模型的群体药代动力学参数的差异。比较了模型之间的预测性能。根据NONMEM和NPEM2的单室模型,分析了根据胎龄(GA)依赖性给药间隔接受妥布霉素治疗的470名新生儿。构建了其他模型,其中NPEM2中的分析错误模式模仿了NONMEM残留错误,反之亦然。比较各个药代动力学参数估计值。在另一组61名患者中评估了预测性能。最佳模型的种群估计和变异系数(CV)为NONMEM K(el)0.071 h(-1)(27%),V(d)0.59 L / kg(9%); NPEM2 K(el)0.079 h(-1)(42%),V(d)0.65 L / kg(48%)。强迫NONMEM使用NPEM2错误模式作为残留错误,反之亦然,导致估计CV的差异较小。与NPEM2相比,NONMEM产生的偏差更小(P <0.05),并且这种方法的精度相当。总之,NONMEM和NPEM2在种群估计上是不同的。 NONMEM和NPEM2之间的药代动力学参数估计范围的差异很大程度上取决于在两个程序中合并错误模式的方法。

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