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The Association and Predictive Ability of ECG Abnormalities with Cardiovascular Diseases: A Prospective Analysis Cover

The Association and Predictive Ability of ECG Abnormalities with Cardiovascular Diseases: A Prospective Analysis

Open Access
|Sep 2020

Abstract

Aims: To examine whether electrocardiography (ECG) could provide additional values to the traditional risk factors for cardiovascular disease (CVD) risk prediction among different cardiovascular risk subgroups.

Methods: A total of 7,872 community residents aged ≥40 years were followed up for a median of 4.5 years. A 12-lead resting ECG was examined for participants at baseline. CVD events including myocardial infarction, stroke and cardiovascular mortality were collected. Cox proportional hazards models were used and models of traditional risk factors with and without ECG were compared.

Results: At baseline, 2,470 participants (31.3%) had ECG abnormalities. During follow-up, 464 participants developed CVD events. ECG abnormalities were associated with an increased risk of CVD after adjustment for the traditional risk factors in participants with a 10-year atherosclerotic CVD (ASCVD) risk ≥10% (hazard ratio, HR: 1.45; 95% confidence interval, CI: 1.11, 1.91). Adding ECG abnormalities to the traditional CVD risk factors improved reclassification for those who did not experience events [net reclassification index: 8.0% (95% CI: 2%, 19.5%)], discrimination (integrated discrimination improvement: 0.7% (95% CI: 0.1%, 1.9%), and calibration (goodness of fit P value from 0.600 to 0.873) in participants with a 10-year ASCVD risk ≥10%. However, no significant association and improvement were found in participants with a 10-year ASCVD risk <10%.

Conclusions: ECG screening might provide a marginal improvement in CVD risk prediction in adults at high risk. However, ECG should not be recommended in adults at low risk.

DOI: https://doi.org/10.5334/gh.790 | Journal eISSN: 2211-8179
Language: English
Submitted on: Mar 20, 2020
Accepted on: Jul 31, 2020
Published on: Sep 1, 2020
Published by: Ubiquity Press
In partnership with: Paradigm Publishing Services
Publication frequency: 1 issue per year

© 2020 Jingya Niu, Chanjuan Deng, Ruizhi Zheng, Min Xu, Jieli Lu, Tiange Wang, Zhiyun Zhao, Yuhong Chen, Shuangyuan Wang, Meng Dai, Yu Xu, Weiqing Wang, Guang Ning, Yufang Bi, Mian Li, published by Ubiquity Press
This work is licensed under the Creative Commons Attribution 4.0 License.