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不良事件分析回归模型概述。

An Overview of Regression Models for Adverse Events Analysis.

机构信息

Université de Lyon, 69000, Lyon, France.

Université Lyon 1, 69100, Villeurbanne, France.

出版信息

Drug Saf. 2024 Mar;47(3):205-216. doi: 10.1007/s40264-023-01380-7. Epub 2023 Nov 25.

Abstract

Over the last few years, several review articles described the adverse events analysis as sub-optimal in clinical trials. Indeed, the context surrounding adverse events analyses often imply an overwhelming number of events, a lack of power to find associations, but also a lack of specific training regarding those complex data. In randomized controlled trials or in observational studies, comparing the occurrence of adverse events according to a covariable of interest (e.g., treatment) is a recurrent question in the analysis of drug safety data, and adjusting other important factors is often relevant. This article is an overview of the existing regression models that may be considered to compare adverse events and to discuss model choice regarding the characteristics of the adverse events of interest. Many dimensions may be relevant to compare the adverse events between patients, (e.g., timing, recurrence, and severity). Recent efforts have been made to cover all of them. For chronic treatments, the occurrence of intercurrent events during the patient follow-up usually needs the modeling approach to be adapted (at least with regard to their interpretation). Moreover, analysis based on regression models should not be limited to the estimation of relative effects. Indeed, absolute risks stemming from the model should be presented systematically to help the interpretation, to validate the model, and to encourage comparison of studies.

摘要

在过去的几年中,有几篇综述文章描述了临床试验中不良事件分析存在不足。事实上,不良事件分析的背景通常意味着事件数量过多,缺乏发现关联的能力,而且还缺乏针对这些复杂数据的特定培训。在随机对照试验或观察性研究中,根据感兴趣的协变量(例如治疗)比较不良事件的发生是药物安全性数据分析中经常出现的问题,调整其他重要因素通常也是相关的。本文概述了现有的回归模型,这些模型可用于比较不良事件,并讨论针对感兴趣的不良事件特征的模型选择。可能需要考虑许多维度来比较患者之间的不良事件,(例如,时间、复发和严重程度)。最近已经做出了很多努力来涵盖所有这些方面。对于慢性治疗,患者随访期间的并发事件的发生通常需要调整建模方法(至少在解释方面)。此外,基于回归模型的分析不应仅限于相对效果的估计。实际上,应系统地呈现模型产生的绝对风险,以帮助解释、验证模型,并鼓励研究之间的比较。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2983/10874334/ea69b0a2e615/40264_2023_1380_Fig1_HTML.jpg

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