Methods for the Inclusion of Real-World Evidence in a Rare Events Meta-Analysis of Randomized Controlled Trials

Author:

Yao Minghong123,Wang Yuning123,Mei Fan123,Zou Kang123,Li Ling123,Sun Xin123

Affiliation:

1. Chinese Evidence-Based Medicine Center and MAGIC China Center, West China Hospital, Sichuan University, Chengdu 610041, China

2. NMPA Key Laboratory for Real World Data Research and Evaluation in Hainan, Chengdu 610041, China

3. Sichuan Center of Technology Innovation for Real World Data, Chengdu 610041, China

Abstract

Background: Many rare events meta-analyses of randomized controlled trials (RCTs) have lower statistical power, and real-world evidence (RWE) is becoming widely recognized as a valuable source of evidence. The purpose of this study is to investigate methods for including RWE in a rare events meta-analysis of RCTs and the impact on the level of uncertainty around the estimates. Methods: Four methods for the inclusion of RWE in evidence synthesis were investigated by applying them to two previously published rare events meta-analyses: the naïve data synthesis (NDS), the design-adjusted synthesis (DAS), the use of RWE as prior information (RPI), and the three-level hierarchical models (THMs). We gauged the effect of the inclusion of RWE by varying the degree of confidence placed in RWE. Results: This study showed that the inclusion of RWE in a rare events meta-analysis of RCTs could increase the precision of the estimates, but this depended on the method of inclusion and the level of confidence placed in RWE. NDS cannot consider the bias of RWE, and its results may be misleading. DAS resulted in stable estimates for the two examples, regardless of whether we placed high- or low-level confidence in RWE. The results of the RPI approach were sensitive to the confidence level placed in RWE. The THM was effective in allowing for accommodating differences between study types, while it had a conservative result compared with other methods. Conclusion: The inclusion of RWE in a rare events meta-analysis of RCTs could increase the level of certainty of the estimates and enhance the decision-making process. DAS might be appropriate for inclusion of RWE in a rare event meta-analysis of RCTs, but further evaluation in different scenarios of empirical or simulation studies is still warranted.

Funder

National Natural Science Foundation of China

National Science Fund for Distinguished Young Scholars

Sichuan Provincial Central Government Guides Local Science and Technology Development Special Project

Fundamental Research Funds for the Central Public Welfare Research Institutes

Publisher

MDPI AG

Subject

General Medicine

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