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利用外部数据检验随机临床试验中具有生物标志物交互作用的实验性疗法

Leveraging external data for testing experimental therapies with biomarker interactions in randomized clinical trials

Biometrika · 2025
被引 0
ABS 4

中文导读

本文提出一种置换检验方法,利用外部数据提高随机临床试验中检测异质性治疗效果的统计功效,同时控制假阳性率,适用于肿瘤学等领域的实验性疗法评估。

Abstract

Summary In oncology the efficacy of novel therapeutics often differs across patient subgroups, and these variations are difficult to predict during the initial phases of the drug development process. The relation between the power of randomized clinical trials and heterogeneous treatment effects has been discussed by several authors. In particular, false negative results are likely to occur when the treatment effects concentrate in a subpopulation, but the study design did not account for potential heterogeneous treatment effects. The use of external data from completed clinical studies and electronic health records has the potential to improve decision-making throughout the development of new therapeutics, from early-stage trials to registration. Here we discuss the use of external data to evaluate experimental treatments with potential heterogeneous treatment effects. We introduce a permutation procedure to test, at the completion of a randomized clinical trial, the null hypothesis that the experimental therapy does not improve the primary outcomes in any subpopulation. The permutation test leverages the available external data to increase power. Also, the procedure controls the false positive rate at the desired $ \alpha $ level without restrictive assumptions on the external data, for example, in scenarios with unmeasured confounders, different pretreatment patient profiles in the trial population compared to the external data and other discrepancies between the trial and external data. We illustrate that the permutation test is optimal according to an interpretable criteria and discuss examples based on asymptotic results and simulations, followed by a retrospective analysis of individual patient-level data from a collection of glioblastoma clinical trials.

临床试验生物标志物统计学方法肿瘤学药物开发