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Matched Longitudinal Analysis of Biomarkers Associated with Survival

机译:与生存相关的生物标志物的纵向分析

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The identification of host or pathogen factors linked to clinical outcome is a common goal in many animal studies of infectious diseases. When the disease is fatal, statistical analysis of such factors may be biased from missing observations due to deaths. For example, when observations of a subject are censored before completing the intended study period, the complete trajectory will not be observed. Even if the factor is not associated with outcome, comparisons of data from survivors with those from nonsurvivors may lead to the wrong conclusions regarding associations with survival. Comparisons between subjects must account for differing observation lengths for those who survive relative to those who do not. Analyzing data over an interval common to all subjects provides one solution but requires eliminating data, some of which may be informative about the differences between groups. Here, we present a novel approach, matched longitudinal analysis (MLA), for analyzing such data based on matching biomarker intervals for survivors and nonsurvivors. We describe the results from simulation studies and from a study of monkeypox virus infection in nonhuman primates. In our application, MLA identified low monocyte chemoattractant protein-1 (MCP-1) levels as having a statistically significant association with survival, whereas the alternative methods did not identify an association. The method has general application to longitudinal studies that seek to find associations of biomarker changes with survival.
机译:与临床结果相关的宿主或病原体因素的鉴定是许多传染病动物研究的共同目标。当该疾病致命时,对此类因素的统计分析可能会因死亡导致缺失的观察结果而偏见。例如,当对受试者的观察在完成预期的研究期之前进行审查时,将不会观察到完整的轨迹。即使该因素与结果无关,但幸存者的数据与非生存者的数据比较可能会导致关于与生存的关联的错误结论。相对于那些没有生存的人,受试者之间的比较必须考虑到不同的观察长度。分析所有受试者共有的间隔数据提供了一个解决方案,但需要消除数据,其中一些可能会使组之间的差异有用。在这里,我们提出了一种与纵向分析(MLA)相匹配的新方法,用于基于幸存者和非生存者的生物标志物间隔来分析此类数据。我们描述了仿真研究的结果以及非人类灵长类动物中猴氧基病毒感染的研究。在我们的应用中,MLA鉴定出低单核细胞趋化蛋白1(MCP-1)水平与生存具有统计学意义的关联,而替代方法没有识别缔合。该方法对纵向研究具有一般应用,该研究试图找到生物标志物变化与生存的关联。

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