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Why do we keep missing left circumflex artery myocardial infarctions?
Ryan Geffin1, Jeffrey Triska1, Salim Najjar1
1Department of Medicine, Baylor College of Medicine, Houston, TX, USA.
Insights
Diagnosing left circumflex artery (LCx) myocardial infarctions (MI) is challenging. Subtle ECG changes in patients with LCx OMI, especially proximal lesions, can delay critical reperfusion therapy.
Area of Science:
- Cardiology
- Medical Diagnostics
- Interventional Cardiology
Background:
- Electrocardiogram (ECG) diagnosis of left circumflex artery (LCx) myocardial infarctions (MI) presents a persistent challenge.
- Subtle or absent ST-segment changes on ECG can complicate the identification of LCx occlusions.
Purpose of the Study:
- To investigate ECG patterns associated with acute occlusion myocardial infarction (OMI) in the LCx artery.
- To correlate LCx lesion location with ECG findings and reperfusion therapy delays.
Main Methods:
- Retrospective observational study of 58 patients with acute LCx OMI.
- Analysis of electronic medical records, cardiac biomarkers, coronary angiography, and 12-lead ECGs.
- Classification of ECGs and correlation with LCx lesion anatomy (proximal/distal to first obtuse marginal artery).
Main Results:
- Patients with LCx OMI proximal to the first obtuse marginal artery, particularly those with left or codominant circulation, often showed no or subtle ST-segment changes.
- These subtle ECG findings were associated with delays in reperfusion therapy.
Conclusions:
- "Classic" ST-segment elevation indicative of MI may be absent in LCx OMI, especially with proximal lesions and specific coronary circulation patterns.
- Cancellation forces in limb leads can obscure typical ECG findings, necessitating heightened clinical suspicion for LCx OMI.
Background:
Diagnosis of left circumflex artery (LCx) myocardial infarctions via 12‑lead electrocardiogram (ECG) has posed a challenge to healthcare professionals for many years.
Methods And Results:
A retrospective observational study was performed to analyze patients admitted with myocardial infarction. The study used electronic medical records and specific ICD-10 codes to identify eligible patients, resulting in 2032 encounters. After independent adjudication of cardiac biomarkers, coronary angiography, and electrocardiographic changes, a final patient population of 58 encounters with acute occlusion myocardial infarction (OMI) with a culprit LCx lesion was established. OMI was defined as a lesion with either thrombolysis in myocardial infarction flow (TIMI) 0-2 or TIMI 3 with Troponin I > 1 ng/mL (Reference range 0.00-0.03 ng/mL). ECGs of these patients were then independently evaluated and grouped into 8 different classifications based on the presence or absence of ST elevation and/or depression in corresponding leads. ECG patterns and anatomical characteristics (proximal or distal to the first obtuse marginal artery) of the LCx lesions were then correlated. The appropriateness of triage and delay in reperfusion therapy were also assessed. Those with a left dominant or codominant circulation, and with LCx lesions proximal to the first obtuse marginal artery, were more likely to present with no or subtle ST-segment changes that led to delays in reperfusion therapy.
Conclusions:
Patients with left or codominant coronary artery circulation, with OMI proximal to the first obtuse marginal artery, may be less likely to have "classic" findings of ST-segment elevation on ECG due to cancellation forces in the limb leads.
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