ArticleScientific reports2026
A practical ECG-based model for early identification of acute heart failure following acute myocardial infarction.
Article in Scientific reports, 2026. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Not yet cited in PubMed.
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Abstract
Ischemic infarction of the acute myocardium (AMI) is a major cause of acute heart failure (AHF), which markedly increases mortality and readmission rates. One purpose of this study was to establish an ECG-based model for the early prediction of AHF risk in AMI patients. In a retrospective analysis, 301 patients admitted to the hospital (October 2022–March 2025) for AMI met the study criteria. With LASSO, we identified six predictors—prolonged QTc interval, abnormal Q wave, heart rate > 100 bpm, reduced left ventricular ejection fraction (LVEF) from routine echocardiography, male sex, and age 60–75 years—and entered them into a logistic regression nomogram. The model showed good discrimination (AUC = 0.84; internal validation AUC = 0.823) and was validated internally with 2000 bootstrapping iterations; external multicenter validation is planned to confirm its generalizability. The QTc interval and heart rate were positively correlated with Killip grade, and age and QRS duration were negatively correlated. However, P-wave duration and dispersion were negatively correlated with Killip grade. This ECG-based nomogram offers a simple, low-cost and practical AHF early identification tool for patients with a history of AMI, especially those in primary healthcare settings and those who live away from cities.
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