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Published on: January 15, 2022
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.
Background:
Simultaneously measured pressure and flow distal to coronary stenoses can be combined, in conjunction with anatomical measurements, to assess the status of both the epicardial and microvascular circulations.
Methods And Results:
Assessments of coronary hemodynamics were performed using fundamental fluid dynamics principles. We hypothesized that the pressure-drop coefficient (CDPe; trans-stenotic pressure drop divided by the dynamic pressure in the distal vessel) correlates linearly with epicardial and microcirculatory resistances concurrently. In 14 pigs, simultaneous measurements of distal coronary arterial pressure and flow were performed using a dual sensor-tipped guidewire in the setting of both normal and disrupted microcirculation, with the presence of epicardial coronary lesions of lt; 50% area stenosis (AS) and > 50% AS. The CDPe progressively increased from lesions of < 50% AS to > 50% AS and had a higher resolving power (45 +/- 22 to 193 +/- 140 in normal microcirculation; 248 +/- 137 to 351 +/- 140 in disrupted microcirculation) as compared to fractional flow reserve (FFR) and coronary flow reserve (CFR). Strong multiple linear correlation was observed for CDPe with combined FFR and CFR (r = 0.72; p < 0.0001). Further, the ratio of maximum pressure drop coefficient evaluated at the site of stenosis and its theoretical limiting value of minimum cross-sectional area was also able to distinguish different combinations of coronary artery diseases.
Conclusions:
The CDPe can be readily obtained during routine pressure and flow measurements during cardiac catheterization. It is a promising clinical diagnostic parameter that can independently assess the severity of epicardial stenosis and microvascular impairment.
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