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Updated: Aug 19, 2026

In Vivo Quantitative Assessment of Myocardial Structure, Function, Perfusion and Viability Using Cardiac Micro-computed Tomography
Published on: February 16, 2016
Automated quantitative coronary arteriography: morphologic and physiologic validation in vivo of a rapid digital
Insights
A new automated coronary quantitation program accurately measures coronary artery stenosis. This method, validated in dogs, correlates well with actual coronary flow reserve, improving assessment of coronary artery disease.
Area of Science:
- Cardiovascular Imaging
- Interventional Cardiology
- Medical Device Technology
Background:
- Quantitative coronary arteriography assesses coronary artery disease extent and functional significance.
- Current methods often rely on manual contouring or less advanced edge detection on cineangiograms.
Purpose of the Study:
- To evaluate the in vivo performance of a novel, fully automatic, rapid coronary quantitation program.
- To compare the accuracy of this program for analyzing both digital angiograms and cineangiograms.
Main Methods:
- Created precise intraluminal stenoses in canine coronary arteries.
- Recorded biplane digital and cine coronary angiograms with simultaneous flow and pressure measurements.
- Analyzed images using the new automated quantitation program in subtracted and nonsubtracted modes.
Main Results:
- Excellent correlation between known and measured minimal stenosis diameters (r=0.87-0.98).
- High inter- and intraobserver reproducibility (r=0.90-0.97).
- Nonsubtracted digital imaging yielded the best results; cineradiography yielded the worst.
Conclusions:
- The new automated program provides accurate and reproducible in vivo coronary stenosis quantitation.
- Measurements of stenosis correlate significantly with coronary flow reserve, validating its functional significance.
- This rapid method is suitable for analyzing both digital and cine coronary angiograms.
Abstract:
Quantitative coronary arteriography has been shown to be useful in assessing the extent of coronary disease, its functional significance, and its response to therapeutic interventions. Most current methods rely either on hand-drawn arterial contours or automatic edge-detection algorithms applied to 35 mm cineangiograms. To assess the performance in vivo of a new, fully automatic, rapid coronary quantitation program, dogs were instrumented with precision-drilled, plastic cylinders to create intraluminal stenoses in the left anterior descending and/or circumflex arteries, as well as with high-fidelity micromanometers and electromagnetic flow probes. Stenosis diameters ranged from 0.83 to 1.83 mm. Biplane, on-line, digital coronary angiograms and cineangiograms were recorded during standard selective coronary arteriography in the closed-chest preparation. The on-line digital images were analyzed in nonsubtracted and subtracted modes. Cineangiograms were digitized to allow coronary quantitation by the same computer program. There was an excellent correlation between known and measured minimal diameter stenoses (r = .87 to .98, SEE = 0.09 to 0.24 mm). Interobserver and intraobserver variability analysis showed high reproducibility (r = .90 to .97, SEE = 0.12 to 0.23 mm). The best results in both analyses were achieved by nonsubtracted digital imaging and the worst by cineradiography. Measures of percent diameter stenosis, percent area stenosis (geometric and videometric), and absolute minimal cross-sectional area (geometric and videometric) were all significantly correlated with independent measures of actual coronary flow reserve. This study provides direct anatomic and physiologic validation in vivo of a new and rapid coronary quantitation method suitable for analysis of both digital angiograms and cineangiograms.
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