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Using an Interaction Parameter in Model-Based Phase I Trials for Combination Treatments? A Simulation Study

机译:使用基于模型的阶段I阶段的交互参数进行组合处理的试验?一种模拟研究

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摘要

There is growing interest in Phase I dose-finding studies studying several doses of more than one agent simultaneously. A number of combination dose-finding designs were recently proposed to guide escalation/de-escalation decisions during the trials. The majority of these proposals are model-based: a parametric combination-toxicity relationship is fitted as data accumulates. Various parameter shapes were considered but the unifying theme for many of these is that typically between 4 and 6 parameters are to be estimated. While more parameters allow for more flexible modelling of the combination-toxicity relationship, this is a challenging estimation problem given the typically small sample size in Phase I trials of between 20 and 60 patients. These concerns gave raise to an ongoing debate whether including more parameters into combination-toxicity model leads to more accurate combination selection. In this work, we extensively study two variants of a 4-parameter logistic model with reduced number of parameters to investigate the effect of modelling assumptions. A framework to calibrate the prior distributions for a given parametric model is proposed to allow for fair comparisons. Via a comprehensive simulation study, we have found that the inclusion of the interaction parameter between two compounds does not provide any benefit in terms of the accuracy of selection, on average, but is found to result in fewer patients allocated to the target combination during the trial.
机译:在I期剂量发现研究中越来越感兴趣,同时研究几种多剂量的药剂。最近建议在试验期间引导升级/脱升升级决策的许多组合剂量的设计。这些提案中的大多数是基于模型的:参数组合毒性关系被拟合,因为数据累积。考虑各种参数形状,但是其中许多的统一主题是通常在4和6个参数之间进行估计。虽然更多的参数允许更灵活的组合毒性关系建模,但这是一个具有挑战性的估计问题,给出了20至60级患者的阶段I的试验中的典型小样本。这些担忧使持续争论提高了是否将更多参数包含到组合毒性模型中导致更准确的组合选择。在这项工作中,我们广泛地研究了4个参数逻辑模型的两个变体,减少了参数数量,以研究建模假设的效果。建议校准给定参数模型的现有分布的框架,以便进行公平的比较。通过全面的仿真研究,我们发现包含两种化合物之间的相互作用参数并不能在选择的准确性方面提供任何好处,平均而言,发现导致较少的患者分配给目标组合期间审判。

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