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Variability and Accuracy of Coronary CT Angiography Including Use of Iterative Reconstruction Algorithms for Plaque Burden Assessment As Compared with Intravascular Ultrasound-an Ex Vivo Study

Overview
Journal Eur Radiol
Specialty Radiology
Date 2012 May 25
PMID 22622346
Citations 12
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Abstract

Objectives: To systematically assess inter-technique and inter-/intra-reader variability of coronary CT angiography (CTA) to measure plaque burden compared with intravascular ultrasound (IVUS) and to determine whether iterative reconstruction algorithms affect variability.

Methods: IVUS and CTA data were acquired from nine human coronary arteries ex vivo. CT images were reconstructed using filtered back projection (FBPR) and iterative reconstruction algorithms: adaptive-statistical (ASIR) and model-based (MBIR). After co-registration of 284 cross-sections between IVUS and CTA, two readers manually delineated the cross-sectional plaque area in all images presented in random order.

Results: Average plaque burden by IVUS was 63.7 ± 10.7% and correlated significantly with all CTA measurements (r = 0.45-0.52; P < 0.001), while CTA overestimated the burden by 10 ± 10%. There were no significant differences among FBPR, ASIR and MBIR (P > 0.05). Increased overestimation was associated with smaller plaques, eccentricity and calcification (P < 0.001). Reproducibility of plaque burden by CTA and IVUS datasets was excellent with a low mean intra-/inter-reader variability of <1/<4% for CTA and <0.5/<1% for IVUS respectively (P < 0.05) with no significant difference between CT reconstruction algorithms (P > 0.05).

Conclusion: In ex vivo coronary arteries, plaque burden by coronary CTA had extremely low inter-/intra-reader variability and correlated significantly with IVUS measurements. Accuracy as well as reader reliability were independent of CT image reconstruction algorithm.

Key Points: • IVUS is deemed the gold standard in-vivo coronary plaque assessment • But coronary CT angiography findings correlate strongly with IVUS results • Coronary CT angiography now allows plaque quantification close to IVUS • Iterative image reconstruction algorithms do not alter accuracy or reproducibility • Plaque quantification is more challenging in smaller eccentric calcified lesions.

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References
1.
Bland J, Altman D . Statistical methods for assessing agreement between two methods of clinical measurement. Lancet. 1986; 1(8476):307-10. View

2.
Bocksch W, Wellnhofer E, Schartl M, Dreysse S, Klimek W, Franke R . Reproducibility of serial intravascular ultrasound measurements in patients with angiographically silent coronary artery disease after heart transplantation. Coron Artery Dis. 2000; 11(7):555-62. DOI: 10.1097/00019501-200010000-00007. View

3.
Mowatt G, Cook J, Hillis G, Walker S, Fraser C, Jia X . 64-Slice computed tomography angiography in the diagnosis and assessment of coronary artery disease: systematic review and meta-analysis. Heart. 2008; 94(11):1386-93. DOI: 10.1136/hrt.2008.145292. View

4.
Dey D, Schepis T, Marwan M, Slomka P, Berman D, Achenbach S . Automated three-dimensional quantification of noncalcified coronary plaque from coronary CT angiography: comparison with intravascular US. Radiology. 2010; 257(2):516-22. DOI: 10.1148/radiol.10100681. View

5.
Inoue K, Motoyama S, Sarai M, Sato T, Harigaya H, Hara T . Serial coronary CT angiography-verified changes in plaque characteristics as an end point: evaluation of effect of statin intervention. JACC Cardiovasc Imaging. 2010; 3(7):691-8. DOI: 10.1016/j.jcmg.2010.04.011. View