In Vivo Validation of CAAS QCA-3D Coronary Reconstruction Using Fusion of Angiography and Intravascular Ultrasound (ANGUS)

被引:59
|
作者
Schuurbiers, Johan C. H.
Lopez, Nieves Gonzalo [2 ]
Ligthart, Jurgen [2 ]
Gijsen, Frank J. H.
Dijkstra, Jouke [3 ]
Serruys, Patrick W. [2 ]
Van der Steen, Antonius F. [4 ]
Wentzel, Jolanda J. [1 ,4 ]
机构
[1] ErasmusMC, Biomech Lab, NL-3000 CA Rotterdam, Netherlands
[2] ErasmusMC, Intervent Cardiol, Rotterdam, Netherlands
[3] Leiden Univ, Med Ctr, Dept Radiol, LKEB, Leiden, Netherlands
[4] Inter Cardiol Inst Netherlands, Utrecht, Netherlands
关键词
angiography; IVUS; 3D-reconstruction; validation; ENDOTHELIAL SHEAR-STRESS; SIROLIMUS-ELUTING STENTS; 3-DIMENSIONAL RECONSTRUCTION; IVUS ANGUS; ARTERIES; SYSTEM; ATHEROSCLEROSIS; IMPLANTATION; THICKNESS; LUMEN;
D O I
10.1002/ccd.21872
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Objectives: The CAAS QCA-3D system (Pie Medical Imaging BV, the Netherlands) was validated against 3D reconstructions based on fusion of angiography and intravascular ultrasound (ANGUS), allowing slice by slice validation of the lumen areas and 3D geometric values. Background: Accurate online 3D reconstruction of human coronary arteries is of outmost importance during clinical practice in the catheterization laboratory. The CHAS QCA-3D system provides technology to 3D reconstruct human coronary arteries based on two or more angiographic images, but was not validated in realistic arteries before. Methods: Ten patients were imaged using biplane angiography and an ECG gated (TomTec) intravascular ultrasound (IVUS) pullback (stepsize 0.5 mm, Boston Scientific). The coronary arteries were 3D reconstructed based on (a) fusion of biplane angiography and IVUS (ANGUS) and (b) CAAS QCA-3D using the biplane angiography images. For both systems the length, the curvature and the lumen areas at 0.5 mm spacing were calculated and compared. Results: Bland-Altman analysis indicated that the CHAS QCA-3D system underestimated the lumen areas systematically by 0.45 +/- 1.49 mm 2. The segment length was slightly underestimated by the CAAS QCA-3D system (62.1 +/- 11.3 vs. 63.2 +/- 11.4 mm; P < 0.05), while the curvature of the analyzed segments were not statistically different. Conclusions: The CAAS QCA-3D system allows 3D reconstruction of human coronary arteries based on biplane angiography. Validation against the ANGUS system showed that both the 3D geometry and lumen areas are highly correlated which makes the CHAS QCA-3D system a promising tool for applications in the catheterization laboratory and opens possibilities for computational fluid dynamics. (C) 2009 Wiley-Liss, Inc.
引用
收藏
页码:620 / 626
页数:7
相关论文
共 50 条
  • [41] 3D fusion of intravascular ultrasound and coronary computed tomography for in-vivo wall shear stress analysis: a feasibility study
    Alina G. van der Giessen
    Michiel Schaap
    Frank J. H. Gijsen
    Harald C. Groen
    Theo van Walsum
    Nico R. Mollet
    Jouke Dijkstra
    Frans N. van de Vosse
    Wiro J. Niessen
    Pim J. de Feyter
    Antonius F. W. van der Steen
    Jolanda J. Wentzel
    The International Journal of Cardiovascular Imaging, 2010, 26 : 781 - 796
  • [42] 3D Reconstruction and Image Fusion using Transurethral Ultrasound
    Natarajan, Shyam
    Culjat, Martin
    Singh, Rahul
    Ennis, Daniel
    Marks, Leonard
    Grundfest, Warren S.
    2012 IEEE INTERNATIONAL ULTRASONICS SYMPOSIUM (IUS), 2012, : 138 - 141
  • [43] Quantification of coronary artery stenosis using 3D-reconstruction and comparison with 2D QCA
    Rittger, Horald
    Schertel, Birgit
    Sinha, Anil
    Brachmann, Johannes
    AMERICAN JOURNAL OF CARDIOLOGY, 2006, 98 (8A): : 5M - 5M
  • [44] A Novel Method for 3D Reconstruction of Coronary Bifurcation Using Quantitative Coronary Angiography
    Andrikos, Ioannis O.
    Sakellarios, Atnonis I.
    Siogkas, Panagiotis K.
    Tsompou, Panagiota I.
    Kigka, Vassiliki I.
    Michalis, Lampros K.
    Fotiadis, Dimitrios I.
    WORLD CONGRESS ON MEDICAL PHYSICS AND BIOMEDICAL ENGINEERING 2018, VOL 1, 2019, 68 (01): : 191 - 195
  • [45] In vivo comparison of key quantitative parameters measured with 3D peripheral angiography, 2D peripheral quantitative angiography and intravascular ultrasound
    Zasada, Wojciech
    Slezak, Magdalena
    Pociask, Elzbieta
    Malinowski, Krzysztof Piotr
    Proniewska, Klaudia
    Buszman, Piotr
    Milewski, Krzysztof
    Granada, Juan F.
    Kaluza, Grzegorz L.
    INTERNATIONAL JOURNAL OF CARDIOVASCULAR IMAGING, 2019, 35 (02): : 215 - 223
  • [46] In vivo comparison of key quantitative parameters measured with 3D peripheral angiography, 2D peripheral quantitative angiography and intravascular ultrasound
    Wojciech Zasada
    Magdalena Slezak
    Elzbieta Pociask
    Krzysztof Piotr Malinowski
    Klaudia Proniewska
    Piotr Buszman
    Krzysztof Milewski
    Juan F. Granada
    Grzegorz L. Kaluza
    The International Journal of Cardiovascular Imaging, 2019, 35 : 215 - 223
  • [47] Accurate visualization and quantification of corollary vasculature by 3-D/4-D fusion from biplane angiography and intravascular ultrasound
    Wahle, A
    Mitchell, SC
    Olszewski, ME
    Long, RM
    Sonka, M
    BIOMONITORING AND ENDOSCOPY TECHNOLOGIES, 2001, 4158 : 144 - 155
  • [48] In vivo stress analysis of moving coronary arterial tree based on 3-D dynamic reconstruction of coronary angiography
    Li, SH
    Chen, SYJ
    Carroll, JD
    CIRCULATION, 1999, 100 (18) : 542 - 542
  • [49] Estimation of Coronary Wall Strain Distribution Based on 3-D Reconstruction from Intravascular Ultrasound Images
    Zheng, Sun
    Ji Siwen
    Cun, Liu
    JOURNAL OF MEDICAL IMAGING AND HEALTH INFORMATICS, 2015, 5 (08) : 1715 - 1720
  • [50] Spatio-temporal localization of intravascular ultrasound data for accurate 3D reconstruction of coronary arteries
    Shekhar, R
    Cothren, RM
    Vince, DG
    Cornhill, JF
    PROCEEDINGS OF THE 18TH ANNUAL INTERNATIONAL CONFERENCE OF THE IEEE ENGINEERING IN MEDICINE AND BIOLOGY SOCIETY, VOL 18, PTS 1-5, 1997, 18 : 668 - 669