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The good, the bad, and the different: A primer on aspects of heterogeneity of treatment effects

机译:好的,坏的和不同的:治疗效果异质性方面的入门

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The concept of heterogeneity is concerned with understanding differences within and across patients and studies. Heterogeneity of treatment effects is nonrandom variability in response to treatment and includes both benefits and harms. Because not all patients respond the same way, treatment decisions applied in a "one size fits all" fashion based on the average response observed in clinical trials may lead to suboptimal outcomes for some patients. Variation in outcomes among patients may be caused by observable and nonobservable factors. Changes in patients' health status over time can contribute to variability among patients. Assuming that the results from clinical trials are homogeneous across patients may fail to take into account clinically significant variability where some patients may receive benefit and others harm. Subgroup analyses and prediction models are 2 tools to explain variability observed within a study. Evidence synthesis with meta-analysis can provide useful information on the overall effectiveness and response among groups of patients undersampled in individual studies. Yet caution is warranted if the meta-analysis is missing studies or the individual studies comprising the meta-analysis are inherently different. For those making clinical, coverage, and reimbursement decisions at a population level, such as clinicians and pharmacy and therapeutics committee members, understanding the variation among patients, among subpopulations or populations of patients, among clinical studies, or within a meta-analysis is important to ensuring optimal patient outcomes. This article presents a variety of tools and resources to aid decision makers as they evaluate the literature to determine when clinically relevant differences exist.
机译:异质性的概念与理解患者和研究之间以及患者之间和研究之间的差异有关。治疗效果的异质性是响应治疗的非随机变异性,包括利弊。由于并非所有患者都以相同的方式做出反应,因此基于临床试验中观察到的平均反应以“一刀切”的治疗决策可能导致某些患者的治疗效果欠佳。患者之间结果的差异可能是由可观察和不可观察的因素引起的。随着时间的流逝,患者健康状况的变化可能导致患者之间的差异。假设临床试验的结果在各个患者之间是同质的,则可能无法考虑到一些患者可能会受益且其他人受到伤害的临床显着差异。亚组分析和预测模型是2种工具,可用来解释研究中观察到的变异性。荟萃分析的证据综合可以提供有关个别研究中被低采样的患者群体的整体有效性和反应的有用信息。但是,如果缺少荟萃分析或组成荟萃分析的各个研究本质上存在差异,则应谨慎行事。对于那些在总体水平上做出临床,覆盖和报销决策的人员(例如临床医生,药学和治疗委员会成员),了解患者之间,患者亚群或患者人群之间,临床研究之间或荟萃分析中的差异非常重要。确保最佳的患者结果。本文介绍了各种工具和资源,可帮助决策者评估文献以确定何时存在临床相关差异。

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