Concurrent assessment of epicardial coronary artery stenosis and microvascular dysfunction using diagnostic endpoints

Rupak K Banerjee1, Koustubh D Ashtekar, Mohamed A Effat

  • 1Department of Mechanical Engineering, University of Cincinnati, Cincinnati, Ohio 45221-0072, USA. rupak.banerjee@uc.edu

Insights

The novel pressure-drop coefficient (CDPe) accurately assesses coronary artery disease severity and microvascular function. This hemodynamic parameter shows promise for clinical diagnosis during cardiac catheterization.

Area of Science:

  • Cardiovascular Physiology
  • Medical Diagnostics
  • Fluid Dynamics

Background:

  • Assessing epicardial and microvascular circulations requires evaluating pressure and flow distal to coronary stenoses.
  • Current methods may not fully capture the complexities of coronary hemodynamics.

Purpose of the Study:

  • To investigate the correlation between the pressure-drop coefficient (CDPe) and epicardial/microcirculatory resistances.
  • To evaluate CDPe's diagnostic capability in distinguishing coronary artery disease severity.

Main Methods:

  • Utilized fundamental fluid dynamics principles to assess coronary hemodynamics.
  • Performed simultaneous distal coronary pressure and flow measurements in pigs using a dual sensor-tipped guidewire.
  • Introduced epicardial lesions (<50% and >50% area stenosis) and manipulated microcirculation.

Main Results:

  • CDPe progressively increased with greater epicardial stenosis severity.
  • CDPe demonstrated higher resolving power than fractional flow reserve (FFR) and coronary flow reserve (CFR).
  • Strong linear correlation (r=0.72) observed between CDPe and combined FFR/CFR.

Conclusions:

  • CDPe is easily obtainable during routine cardiac catheterization.
  • CDPe shows potential as a clinical diagnostic parameter.
  • CDPe can independently assess epicardial stenosis and microvascular impairment severity.
Abstract