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A discrete-time survival model with random effects for designing and analyzing repeated low-dose challenge experiments

机译:具有随机效应的离散时间生存模型用于设计和分析重复的低剂量挑战实验

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摘要

Repeated low-dose (RLD) challenge designs are important in HIV vaccine research. Current methods for RLD designs rely heavily on an assumption of homogeneous risk of infection among animals, which, upon violation, can lead to invalid inferences and underpowered study designs. We propose to fit a discrete-time survival model with random effects that allows for heterogeneity in the risk of infection among animals and allows for predetermined challenge dose changes over time. Based on this model, we derive likelihood ratio tests and estimators for vaccine efficacy. A two-stage approach is proposed for optimizing the RLD design under cost constraints. Simulation studies demonstrate good finite sample properties of the proposed method and its superior performance compared to existing methods. We illustrate the application of the heterogeneous infection risk model on data from a real simian immunodeficiency virus vaccine study using Rhesus Macaques. The results of our study provide useful guidance for future RLD experimental design.
机译:重复的低剂量(RLD)挑战设计在HIV疫苗研究中很重要。当前用于RLD设计的方法在很大程度上依赖于动物间同质感染风险的假设,一旦违反,可能导致无效的推论和研究设计的不足。我们建议采用具有随机效应的离散时间生存模型,该模型允许动物之间感染风险的异质性,并允许随时间变化的预定挑战剂量。基于此模型,我们得出疫苗效力的似然比检验和估计量。提出了一种在成本约束下优化RLD设计的两阶段方法。仿真研究表明,该方法具有良好的有限样本特性,并且与现有方法相比具有优越的性能。我们说明了异质感染风险模型在使用恒河猴的真实猿猴免疫缺陷病毒疫苗研究数据中的应用。我们的研究结果为将来的RLD实验设计提供了有用的指导。

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