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Applied immuno-epidemiological research: an approach for integrating existing knowledge into the statistical analysis of multiple immune markers

机译:应用免疫流行病学研究:一种将现有知识整合到多种免疫标记物统计分析中的方法

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Background Immunologists often measure several correlated immunological markers, such as concentrations of different cytokines produced by different immune cells and/or measured under different conditions, to draw insights from complex immunological mechanisms. Although there have been recent methodological efforts to improve the statistical analysis of immunological data, a framework is still needed for the simultaneous analysis of multiple, often correlated, immune markers. This framework would allow the immunologists’ hypotheses about the underlying biological mechanisms to be integrated. Results We present an analytical approach for statistical analysis of correlated immune markers, such as those commonly collected in modern immuno-epidemiological studies. We demonstrate i) how to deal with interdependencies among multiple measurements of the same immune marker, ii) how to analyse association patterns among different markers, iii) how to aggregate different measures and/or markers to immunological summary scores, iv) how to model the inter-relationships among these scores, and v) how to use these scores in epidemiological association analyses. We illustrate the application of our approach to multiple cytokine measurements from 818 children enrolled in a large immuno-epidemiological study (SCAALA Salvador), which aimed to quantify the major immunological mechanisms underlying atopic diseases or asthma. We demonstrate how to aggregate systematically the information captured in multiple cytokine measurements to immunological summary scores aimed at reflecting the presumed underlying immunological mechanisms (Th1/Th2 balance and immune regulatory network). We show how these aggregated immune scores can be used as predictors in regression models with outcomes of immunological studies (e.g. specific IgE) and compare the results to those obtained by a traditional multivariate regression approach. Conclusion The proposed analytical approach may be especially useful to quantify complex immune responses in immuno-epidemiological studies, where investigators examine the relationship among epidemiological patterns, immune response, and disease outcomes.
机译:背景技术免疫学家经常测量几种相关的免疫学标记,例如由不同的免疫细胞产生的和/或在不同条件下测量的不同细胞因子的浓度,以从复杂的免疫学机制中获得见解。尽管最近有方法上的努力来改善免疫学数据的统计分析,但是仍然需要一个框架来同时分析多个经常相关的免疫标记。该框架将使免疫学家关于潜在生物学机制的假设得以整合。结果我们提供了一种分析方法,用于相关免疫标记的统计分析,例如现代免疫流行病学研究中通常收集的那些。我们证明i)如何处理同一免疫标记物多次测量之间的相互依赖性,ii)如何分析不同标记物之间的关联模式,iii)如何将不同的测量值和/或标记物汇总到免疫学总评分中,iv)如何​​建模这些评分之间的相互关系,以及v)如何在流行病学关联分析中使用这些评分。我们举例说明了我们的方法在818名儿童中进行的多种细胞因子检测的应用,该儿童参加了一项大型免疫流行病学研究(SCAALA萨尔瓦多),旨在量化特应性疾病或哮喘的主要免疫学机制。我们演示了如何系统地汇总在多种细胞因子测量中捕获的信息,以达到旨在反映推测的潜在免疫机制(Th1 / Th2平衡和免疫调节网络)的免疫学总评分。我们将展示这些汇总的免疫评分如何在具有免疫学研究结果(例如特定IgE)的回归模型中用作预测指标,并将结果与​​通过传统多元回归方法获得的结果进行比较。结论在免疫流行病学研究中,研究人员检查流行病学模式,免疫应答和疾病结局之间的关系时,所提出的分析方法可能对量化复杂的免疫应答特别有用。

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