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Marginal Time-Dependent Causal Effects in Mediation Analysis With Survival Data

机译:生存数据中介分析中的边际时间依赖性因果效应

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The main aim of mediation analysis is to study the direct and indirect effects of an exposure on an outcome. To date, the literature on mediation analysis with multiple mediators has mainly focused on continuous and dichotomous outcomes. However, the development of methods for multiple mediation analysis of survival outcomes is still limited. Here we extend to survival outcomes a method for multiple mediation analysis based on the computation of appropriate weights. The approach considered has the advantages of not requiring specific models for mediators, allowing nonindependent mediators of any nature, and not relying on the assumption of rare outcomes. Simulation studies show good performance of the proposed estimator in terms of bias and coverage probability. The method is further applied to an example from a published study on prostate cancer mortality aimed at understanding the extent to which the effect of DNA methyltransferase 3b (DNMT3b) genotype on mortality was explained by DNA methylation and tumor aggressiveness. This approach can be used to quantify the marginal time-dependent direct and indirect effects carried by multiple indirect pathways, and software code is provided to facilitate its application.
机译:调解分析的主要目的是研究暴露对结果的直接和间接影响。迄今为止,具有多个调解员的中介分析的文献主要集中在连续和二分的结果上。然而,仍然有限地有限地研发用于生存结果的多种调解分析。在这里,我们延伸到生存结果是基于适当权重的计算的多个中介分析的方法。该方法考虑了不需要特定介质模型的优点,允许任何自然的非依任介质,而不是依赖于罕见结果的假设。模拟研究在偏见和覆盖概率方面表现出拟议的估算器的良好表现。该方法进一步应用于来自旨在理解DNA甲基转移酶3B(DNMT3B)基因型对死亡率的程度的发表的前列腺癌死亡研究的一个例子是通过DNA甲基化和肿瘤侵袭性解释了DNA甲基转移酶3B(DNMT3B)基因型对死亡率的程度。这种方法可用于量化由多个间接途径携带的边际时间依赖性直接和间接效应,并且提供软件代码以促进其应用。

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