Coronary wave energy: a novel predictor of functional recovery after myocardial infarction

Kalpa De Silva1, Paul Foster, Antoine Guilcher

  • 1King's College London British Heart Foundation Centre of Excellence, National Institute for Health Research Biomedical Research Centre at Guy's and St. Thomas' National Health Service Foundation Trust, Cardiovascular Division, London, United Kingdom.

Insights

Early wave intensity analysis of microcirculation in acute coronary syndromes predicts myocardial recovery. This backward expansion wave energy accurately identifies viable heart muscle after infarction, guiding treatment decisions.

Area of Science:

  • Cardiology
  • Cardiovascular Physiology
  • Medical Imaging

Background:

  • Revascularization improves outcomes in acute coronary syndromes if myocardium is viable.
  • Coronary microcirculation and contractility influence coronary flow, analyzable by wave intensity analysis.
  • Assessing myocardial viability early is crucial for guiding post-revascularization treatment.

Purpose of the Study:

  • To determine if early wave intensity analysis-derived microcirculatory backward expansion wave energy predicts late myocardial viability after acute coronary syndromes.
  • To evaluate the correlation between microcirculatory function and infarct size/functional recovery.

Main Methods:

  • Wave intensity analysis of coronary pressure and velocity in the infarct-related artery.
  • Cardiac magnetic resonance imaging (CMR) for regional left ventricular function and late-gadolinium enhancement (LGE).
  • Calculation of hyperemic microvascular resistance (HMR).

Main Results:

  • Backward expansion wave energy inversely correlated with LGE infarct mass (r=-0.81; P<0.0001).
  • Backward expansion wave energy strongly predicted regional left ventricular recovery (r=0.68; P=0.001).
  • A threshold of 2.8 W m(-2) s(-2)×10(5) predicted functional recovery with 91% sensitivity and 82% specificity (AUC 0.88). HMR correlated with LGE but not recovery.

Conclusions:

  • Microcirculation-derived backward expansion wave is a novel index correlating with infarct magnitude.
  • This wave analysis may predict functional myocardial recovery post-infarction.
  • Coronary wave intensity analysis can aid myocardial viability assessment during cardiac catheterization.
Abstract

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