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当暴露状态未知时识别疫苗效果。

Identification of Vaccine Effects When Exposure Status Is Unknown.

机构信息

From the Department of Mathematics, Ecole Polytechnique Fédérale de Lausanne, Lausanne, Switzerland.

Department of Health Sciences, Bouvé College of Health Sciences, Northeastern University, Boston, MA.

出版信息

Epidemiology. 2023 Mar 1;34(2):216-224. doi: 10.1097/EDE.0000000000001573. Epub 2023 Jan 26.

Abstract

Results from randomized controlled trials (RCTs) help determine vaccination strategies and related public health policies. However, defining and identifying estimands that can guide policies in infectious disease settings is difficult, even in an RCT. The effects of vaccination critically depend on characteristics of the population of interest, such as the prevalence of infection, the number of vaccinated, and social behaviors. To mitigate the dependence on such characteristics, estimands, and study designs, that require conditioning or intervening on exposure to the infectious agent have been advocated. But a fundamental problem for both RCTs and observational studies is that exposure status is often unavailable or difficult to measure, which has made it impossible to apply existing methodology to study vaccine effects that account for exposure status. In this study, we present new results on this type of vaccine effects. Under plausible conditions, we show that point identification of certain relative effects is possible even when the exposure status is unknown. Furthermore, we derive sharp bounds on the corresponding absolute effects. We apply these results to estimate the effects of the ChAdOx1 nCoV-19 vaccine on SARS-CoV-2 disease (COVID-19) conditional on postvaccine exposure to the virus, using data from a large RCT.

摘要

随机对照试验(RCTs)的结果有助于确定疫苗接种策略和相关公共卫生政策。然而,即使在 RCT 中,定义和识别可指导传染病环境中政策的估计量也很困难。疫苗接种的效果取决于感兴趣人群的特征,例如感染的流行率、接种人数和社会行为。为了减轻对这些特征、估计量和需要对感染因子进行调节或干预的研究设计的依赖,已经提倡了这种方法。但是,RCT 和观察性研究都存在一个根本问题,即暴露状态通常无法获得或难以测量,这使得不可能应用现有方法来研究考虑暴露状态的疫苗效果。在这项研究中,我们提出了关于这种类型的疫苗效果的新结果。在合理的条件下,我们证明,即使暴露状态未知,也可以对某些相对效果进行点估计。此外,我们还推导出相应绝对效果的精确界限。我们将这些结果应用于使用大型 RCT 中的数据,根据接种疫苗后对病毒的暴露情况,来估计 ChAdOx1 nCoV-19 疫苗对 SARS-CoV-2 疾病(COVID-19)的效果。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ad99/9891279/fa0b2d968732/ede-34-216-g001.jpg

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