医学
心房颤动
内科学
心脏病学
危险分层
缺血性中风
冲程(发动机)
心房扑动
CHA2DS2–血管评分
弗雷明翰风险评分
纤颤
临床终点
血管疾病
试验预测值
中风风险
心电图
逻辑回归
疾病严重程度
前瞻性队列研究
作者
Chen Shu Wu,Po‐Huang Chen,Wen‐Yu Lin,Wei-Ting Liu,Po-Kai Chan,Hsuan Yi Wu,Chin‐Sheng Lin,Wei‐Shiang Lin,Chiao‐Chin Lee
标识
DOI:10.1161/jaha.126.050723
摘要
Background To evaluate whether artificial intelligence–derived electrocardiographic‐age enhances the predictive utility of the CHA 2 DS 2 ‐VA (congestive heart failure/left ventricular dysfunction, hypertension, age ≥75 years [doubled], diabetes, stroke/transient ischemic attack [doubled], vascular disease, age 65–74 years) score in patients with atrial fibrillation representing a borderline indication for anticoagulation with a score of 1. Methods From a multicenter atrial fibrillation and atrial flutter registry, we identified 832 anticoagulation‐naïve patients with a CHA 2 DS 2 ‐VA score of 1 and at least one 12‐lead ECG within 90 days of diagnosis. ECG‐age was estimated using a previously validated deep learning (convolutional neural network) model. Chronological age was replaced with ECG‐age (1 point for 65–74 years, 2 points for ≥75 years), leaving all other score components unchanged, to form the EA‐CHA 2 DS 2 ‐VA score. Patients were grouped as EA‐CHA 2 DS 2 ‐VA ≥2 (n=315) or <2 (n=517). Results Compared with patients with an EA‐CHA 2 DS 2 ‐VA score <2, those with an EA‐CHA 2 DS 2 ‐VA score ≥2 had a significantly higher risk of ischemic stroke or transient ischemic attack (hazard ratio [HR], 1.82 [95% CI, 1.06–3.13]; P =0.028). All‐cause mortality was also significantly elevated in the EA‐CHA 2 DS 2 ‐VA ≥2 group (HR, 2.22 [95% CI, 1.43–3.45]; P <0.001). Major bleeding did not differ significantly between groups ( P =0.386). Conclusions Substituting chronological age with artificial intelligence–derived ECG‐age in the CHA 2 DS 2 ‐VA score was associated with improved risk stratification in patients with atrial fibrillation with intermediate stroke risk. This refined risk stratification facilitates timely initiation of anticoagulation therapy, potentially reducing stroke and mortality. Future prospective studies are essential to integrate this artificial intelligence–enhanced strategy into clinical practice. Registration This study was registered on the Open Science Framework (URL: https://doi.org/10.17605/OSF.IO/39BND ; unique identifier: 10.17605/OSF.IO/39BND).
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