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Estimating Marginal Healthcare Costs Using Genetic Variants as Instrumental Variables: Mendelian Randomization in Economic Evaluation

机译:使用遗传变量作为工具变量估算边际医疗费用:经济评估中的孟德尔随机化

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摘要

Accurate measurement of the marginal healthcare costs associated with different diseases and health conditions is important, especially for increasingly prevalent conditions such as obesity. However, existing observational study designs cannot identify the causal impact of disease on healthcare costs. This paper explores the possibilities for causal inference offered by Mendelian randomization, a form of instrumental variable analysis that uses genetic variation as a proxy for modifiable risk exposures, to estimate the effect of health conditions on cost. Well-conducted genome-wide association studies provide robust evidence of the associations of genetic variants with health conditions or disease risk factors. The subsequent causal effects of these health conditions on cost can be estimated using genetic variants as instruments for the health conditions. This is because the approximately random allocation of genotypes at conception means that many genetic variants are orthogonal to observable and unobservable confounders. Datasets with linked genotypic and resource use information obtained from electronic medical records or from routinely collected administrative data are now becoming available and will facilitate this form of analysis. We describe some of the methodological issues that arise in this type of analysis, which we illustrate by considering how Mendelian randomization could be used to estimate the causal impact of obesity, a complex trait, on healthcare costs. We describe some of the data sources that could be used for this type of analysis. We conclude by considering the challenges and opportunities offered by Mendelian randomization for economic evaluation.
机译:准确测量与不同疾病和健康状况相关的边际医疗保健成本非常重要,尤其是对于肥胖等日益普遍的疾病。但是,现有的观察性研究设计无法确定疾病对医疗费用的因果影响。本文探讨了孟德尔随机化提供因果推理的可能性,孟德尔随机化是一种工具变量分析形式,使用遗传变异作为可修改的风险暴露的代理,以评估健康状况对成本的影响。进行良好的全基因组关联研究为遗传变异与健康状况或疾病风险因素的关联提供了有力的证据。可以使用遗传变异作为健康状况的手段来估算这些健康状况对成本造成的因果关系。这是因为概念上基因型的大致随机分配意味着许多遗传变异与可观察和不可观察的混杂因素正交。从电子病历或常规收集的行政数据中获得的具有关联的基因型和资源使用信息的数据集现在变得可用,这将有助于这种形式的分析。我们描述了这种类型的分析中出现的一些方法学问题,并通过考虑如何使用孟德尔随机化来估计肥胖这一复杂特征对医疗保健成本的因果影响来说明这些问题。我们描述了一些可用于此类分析的数据源。最后,我们考虑孟德尔随机化为经济评估提供的挑战和机遇。

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