利用单交叉约束对延迟治疗效果进行非参数分析

IF 1.3 3区 生物学 Q4 MATHEMATICAL & COMPUTATIONAL BIOLOGY Biometrical Journal Pub Date : 2024-02-25 DOI:10.1002/bimj.202200165
Nicholas C. Henderson, Kijoeng Nam, Dai Feng
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引用次数: 0

摘要

由于治疗效果的延迟,涉及新型免疫肿瘤疗法的临床试验经常会出现违反比例危险假设的生存曲线,在这种情况下,两个治疗臂的生存曲线在最终分开之前可能会有一次交叉。为了灵活地模拟这种情况,我们介绍了一种估算治疗臂特异生存函数的非参数方法,该方法限制这两条生存函数最多交叉一次,而不对生存曲线的关系做任何额外的假设。我们的方法的主要优点是,如果存在交叉,它能提供交叉时间的估计值,此外,我们的方法还能生成可解释的治疗获益度量,包括交叉条件下的生存概率和交叉条件下的受限残余平均寿命估计值。我们对这些指标的估计值可与初次分析中的疗效指标一起使用,以进一步了解不同治疗方案的生存率差异。我们通过一项大型模拟研究和对近期一项联合疗法试验的重建结果分析,展示了我们的方法的应用和有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Nonparametric analysis of delayed treatment effects using single-crossing constraints

Clinical trials involving novel immuno-oncology therapies frequently exhibit survival profiles which violate the proportional hazards assumption due to a delay in treatment effect, and, in such settings, the survival curves in the two treatment arms may have a crossing before the two curves eventually separate. To flexibly model such scenarios, we describe a nonparametric approach for estimating the treatment arm-specific survival functions which constrains these two survival functions to cross at most once without making any additional assumptions about how the survival curves are related. A main advantage of our approach is that it provides an estimate of a crossing time if such a crossing exists, and, moreover, our method generates interpretable measures of treatment benefit including crossing-conditional survival probabilities and crossing-conditional estimates of restricted residual mean life. Our estimates of these measures may be used together with efficacy measures from a primary analysis to provide further insight into differences in survival across treatment arms. We demonstrate the use and effectiveness of our approach with a large simulation study and an analysis of reconstructed outcomes from a recent combination therapy trial.

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来源期刊
Biometrical Journal
Biometrical Journal 生物-数学与计算生物学
CiteScore
3.20
自引率
5.90%
发文量
119
审稿时长
6-12 weeks
期刊介绍: Biometrical Journal publishes papers on statistical methods and their applications in life sciences including medicine, environmental sciences and agriculture. Methodological developments should be motivated by an interesting and relevant problem from these areas. Ideally the manuscript should include a description of the problem and a section detailing the application of the new methodology to the problem. Case studies, review articles and letters to the editors are also welcome. Papers containing only extensive mathematical theory are not suitable for publication in Biometrical Journal.
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