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Identifying Coronary Artery Calcification on Non-gated Computed Tomography Scans
Published on: August 28, 2018
Contemporary Discrepancies of Stenosis Assessment by Computed Tomography and Invasive Coronary Angiography
Young Bin Song1,2, Armin Arbab-Zadeh2, Matthew B Matheson3
1Division of Cardiology, Department of Medicine, Heart Vascular Stroke Institute, Samsung Medical Center, Sungkyunkwan University School of Medicine, Seoul, Republic of Korea (Y.B.S.).
Insights
320-slice coronary computed tomographic angiography (CTA) accurately detects obstructive coronary artery disease (CAD) compared to invasive methods, with lower radiation exposure. CTA and invasive coronary angiography (ICA) show similar accuracy in predicting revascularization and detecting myocardial ischemia.
Area of Science:
- Cardiovascular Imaging
- Radiology
- Diagnostic Accuracy
Background:
- Coronary computed tomographic angiography (CTA) advancements challenge invasive coronary angiography (ICA) as the gold standard for coronary artery disease (CAD) evaluation.
- 320-slice CTA offers a potential non-invasive alternative for diagnosing obstructive CAD.
Purpose of the Study:
- To investigate the diagnostic accuracy of 320-slice CTA for detecting obstructive CAD.
- To compare CTA's accuracy against ICA and single-photon emission computed tomography (SPECT) myocardial perfusion imaging (MPI).
Main Methods:
- The CORE320 study enrolled 381 patients undergoing 320-slice CTA, SPECT-MPI, and ICA.
- Obstructive CAD was defined as ≥50% stenosis by quantitative coronary angiography.
- Diagnostic accuracy was assessed using the area under the receiver operating characteristic curve (AUC).
Main Results:
- 320-slice CTA demonstrated high diagnostic accuracy for obstructive CAD on a per-patient analysis (AUC 0.90).
- Radiation dose for CTA was significantly lower than for ICA (3.16 vs. 11.97 mSv).
- CTA and ICA showed similar accuracy in identifying patients with inducible myocardial ischemia and those undergoing clinically driven revascularization.
Conclusions:
- Contemporary 320-slice CTA is accurate for identifying obstructive CAD with reduced radiation exposure.
- Agreement between CTA and ICA is lower at the vessel and segment levels.
- Both CTA and ICA have comparable performance in predicting revascularization and detecting myocardial ischemia, indicating shared limitations in stenosis quantification.
Abstract:
Background Ongoing advancements of coronary computed tomographic angiography (CTA) continue to challenge the role of invasive coronary angiography (ICA) as the gold standard for the evaluation of coronary artery disease (CAD). We sought to investigate the diagnostic accuracy of 320-slice CTA for detecting obstructive CAD in reference to ICA and nuclear myocardial perfusion imaging using single-photon emission computed tomography. Methods For the CORE320 study (Coronary Artery Evaluation Using 320-Row Multidetector Computed Tomography Angiography and Myocardial Perfusion), 381 patients at 16 centers underwent CTA, nuclear myocardial perfusion imaging by single-photon emission computed tomography, and ICA for the evaluation of CAD. Imaging studies were analyzed in blinded core laboratories, and a stenosis of ≥50% by quantitative coronary angiography was considered obstructive, whereas a stress difference score of ≥1 indicated inducible myocardial ischemia. The area under the receiver operating characteristic curve was used to evaluate diagnostic accuracy. Results Of 381 patients, 229 (60%) had obstructive CAD by quantitative coronary angiography. Diagnostic accuracy of CTA on a per-patient analysis revealed an area under the receiver operating characteristic curve of 0.90 (95% CI, 0.87-0.93). Per-vessel and per-segment analysis revealed lower area under the receiver operating characteristic curve of 0.87 (0.84-0.90) and 0.81 (0.78-0.83), respectively. Median radiation dose was lower for CTA versus ICA: 3.16 (interquartile range, 2.82-3.59) versus 11.97 (interquartile range, 7.60-17.8) mSv ( P<0.001). Accuracy for identifying patients with inducible myocardial ischemia by SPECT-MPI was similar for CTA and ICA (area under the receiver operating characteristic curve, 0.68 versus 0.71 by quantitative coronary angiography and 0.68 by visual angiographic assessment; P>0.05). Furthermore, accuracy for identifying patients who subsequently underwent clinically driven coronary revascularization also was similar for CTA (0.76 [0.71-0.81]) and ICA (0.78 [0.74-0.83]; P=0.20). Conclusions Contemporary CTA accurately identifies patients with obstructive CAD by ICA at lower radiation exposure; however, agreement is lower in vessel- and segment-level analyses. Both CTA and ICA perform similarly for predicting clinically driven revascularization and for detecting myocardial ischemia by myocardial perfusion imaging using single-photon emission computed tomography, suggesting that limitations by both CTA and ICA contribute to variability of stenosis quantification. Clinical Trial Registration URL: https://www.clinicaltrials.gov . Unique identifier: NCT00934037.
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