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Lipid Adjustment in the Analysis of Environmental Contaminants and Human Health Risks

机译:分析环境污染物和人类健康风险中的脂质调节

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摘要

The literature on exposure to lipophilic agents such as polychlorinated biphenyls (PCBs) is conflicting, posing challenges for the interpretation of potential human health risks. Laboratory variation in quantifying PCBs may account for some of the conflicting study results. For example, for quantification purposes, blood is often used as a proxy for adipose tissue, which makes it necessary to model serum lipids when assessing health risks of PCBs. Using a simulation study, we evaluated four statistical models (unadjusted, standardized, adjusted, and two-stage) for the analysis of PCB exposure, serum lipids, and health outcome risk (breast cancer). We applied eight candidate true causal scenarios, depicted by directed acyclic graphs, to illustrate the ramifications of misspecification of underlying assumptions when interpreting results. Statistical models that deviated from underlying causal assumptions generated biased results. Lipid standardization, or the division of serum concentrations by serum lipids, was observed to be highly prone to bias. We conclude that investigators must consider biology, biologic medium (e.g., nonfasting blood samples), laboratory measurement, and other underlying modeling assumptions when devising a statistical plan for assessing health outcomes in relation to environmental exposures.
机译:关于接触诸如多氯联苯(PCBs)等亲脂性药物的文献相互矛盾,这为解释潜在的人类健康风险提出了挑战。定量PCB中实验室的变化可能解释了一些相互矛盾的研究结果。例如,出于量化目的,血液通常被用作脂肪组织的替代物,因此在评估PCB的健康风险时,有必要对血清脂质进行建模。通过模拟研究,我们评估了四种统计模型(未经调整,标准化,经过调整和两阶段),用于分析PCB暴露,血脂和健康风险(乳腺癌)。我们应用了有向无环图描绘的八种候选真实因果情景,以说明解释结果时基础假设的错误指定带来的后果。偏离基本因果假设的统计模型产生了有偏差的结果。脂质标准化,或血清浓度除以血清脂质,很容易产生偏差。我们得出的结论是,研究人员在制定统计计划以评估与环境暴露相关的健康结果时必须考虑生物学,生物介质(例如非空腹血样),实验室测量值以及其他潜在的建模假设。

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