From Electrocardiography to the Catheterization Laboratory: A Multimodal Artificial Intelligence Framework for Acute

Marek Tomala1,2, Maciej Kłaczyński3

  • 1Faculty of Medicine and Health Sciences, University of Applied Sciences in Nowy Sącz, 33-300 Nowy Sącz, Poland.

Insights

Artificial intelligence (AI) shows promise in acute coronary syndrome (ACS) diagnostics, improving electrocardiogram (ECG) and troponin interpretation. However, AI-guided ACS care has not yet demonstrated reduced mortality or reinfarction in clinical trials.

Area of Science:

  • Cardiology
  • Artificial Intelligence
  • Diagnostic Medicine

Background:

  • Current acute coronary syndrome (ACS) diagnosis relies on sequential, independent interpretation of electrocardiograms (ECGs), troponin levels, and coronary angiograms.
  • This approach may miss opportunities for integrated, real-time diagnostic insights.

Purpose of the Study:

  • To review the evidence on advanced diagnostic modalities, particularly machine learning applications, in acute coronary syndrome (ACS) care.
  • To assess the diagnostic accuracy and prognostic associations of AI-enabled ECG, troponin interpretation, and angiography-derived physiological methods.

Main Methods:

  • A narrative review selectively searched PubMed, EMBASE, Cochrane CENTRAL, and Web of Science (January 2015-February 2026).
  • Study selection was performed by a single reviewer, without duplicate screening or formal risk-of-bias assessment.

Main Results:

  • Machine learning-enabled ECG achieved an AUC of 0.938, correctly diagnosing 42% of missed cases by experts.
  • An AI-enabled troponin interpretation method (CoDE-ACS) reported an AUC of 0.953, increasing rule-out rates from 27% to 61%.
  • Angiography-derived physiological methods (e.g., QFR) yielded conflicting prognostic results across trials, with one showing reduced major adverse cardiovascular events (MACE) and another indicating potential harm.

Conclusions:

  • AI holds significant potential for enhancing the accuracy and efficiency of ACS diagnostics, particularly with ECG and troponin analysis.
  • While AI demonstrates strong diagnostic capabilities, robust clinical trials are needed to confirm its impact on reducing hard clinical outcomes like death and reinfarction in ACS care.

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