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Hyperacute T Wave in the Early Diagnosis of Acute Myocardial Infarction
Luca Koechlin1, Ivo Strebel2, Tobias Zimmermann2
1Cardiovascular Research Institute Basel (CRIB) and Department of Cardiology University Hospital Basel, University of Basel, Switzerland; Department of Cardiac Surgery, University Hospital Basel, University of Basel, Switzerland; GREAT network.
Insights
T-wave amplitudes in ECGs did not effectively diagnose myocardial infarction. Only specific leads showed potential, but this indicated upright T waves, not hyperacute ones, limiting diagnostic value.
Area of Science:
- Cardiology
- Diagnostic Imaging
- Electrocardiography
Background:
- The diagnostic utility of T-wave amplitudes for myocardial infarction detection remains unclear.
- Existing research has not fully elucidated the role of T-wave amplitudes in diagnosing acute cardiac events.
Purpose of the Study:
- To investigate the diagnostic performance of T-wave amplitudes in identifying myocardial infarction.
- To address the knowledge gap regarding T-wave amplitude analysis in acute chest discomfort cases.
Main Methods:
- Prospective, multicenter study involving 2457 patients with acute chest discomfort.
- Automatic measurement of T-wave amplitudes from 12-lead ECGs.
- Exclusion of patients with left ventricular hypertrophy, bundle branch block, or paced rhythms; final diagnosis adjudicated by cardiologists.
Main Results:
- Myocardial infarction diagnosed in 18% of patients.
- Most leads showed higher T-wave amplitudes in non-myocardial infarction patients.
- Leads III, aVR, and V1 demonstrated some predictive value (positive likelihood ratios), but this reflected upright T waves, not hyperacute changes.
Conclusions:
- Increased T-wave amplitude, defined by 95th percentile thresholds, is not a reliable indicator for diagnosing myocardial infarction.
- The findings suggest that T-wave amplitude analysis, as measured, offers limited diagnostic information for myocardial infarction.
Study Objective:
The diagnostic performance of T-wave amplitudes for the detection of myocardial infarction is largely unknown. We aimed to address this knowledge gap.
Methods:
T-wave amplitudes were automatically measured in 12-lead ECGs of patients presenting with acute chest discomfort to the emergency department within a prospective diagnostic multicenter study. The final diagnosis was centrally adjudicated by 2 independent cardiologists. Patients with left ventricular hypertrophy, complete left bundle branch block, or paced ventricular depolarization were excluded. The performance for lead-specific 95th-percentile thresholds were reported as likelihood ratios (lr), specificity, and sensitivity.
Results:
Myocardial infarction was the final diagnosis in 445 (18%) of 2457 patients. In most leads, T-wave amplitudes tended to be greater in patients without myocardial infarction than those with myocardial infarction, and T-wave amplitude exceeding the 95th percentile had positive and negative lr close to 1 or with confidence intervals (CIs) crossing 1. The exceptions were leads III, aVR, and V1, which had positive lrs of 3.8 (95% CI, 2.7 to 5.3), 4.3 (95% CI, 3.1 to 6.0) and 2.0 (95% CI, 1.4 to 2.9), respectively. These leads normally have inverted T waves, so T-wave amplitude exceeding the 95th percentile reflects upright rather than increased-amplitude hyperacute T waves.
Conclusion:
Hyperacute T waves, when defined as increased T-wave amplitude exceeding the 95th percentile, did not provide useful information in diagnosing myocardial infarction in this sample.
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