Integration of Computed Tomography and Three-Dimensional Echocardiography for Hybrid Three-Dimensional Printing in Congenital Heart Disease

被引:0
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作者
Jordan Gosnell
Todd Pietila
Bennett P. Samuel
Harikrishnan K. N. Kurup
Marcus P. Haw
Joseph J. Vettukattil
机构
[1] Congenital Heart Center,Echocardiography Sonographer
[2] Biomedical Application Engineer,Clinical Research Nurse, Congenital Heart Center
[3] Materialise,Congenital Heart Center
[4] Helen DeVos Children’s Hospital of Spectrum Health,Congenital Heart Center and Division Chief, Pediatric Cardiothoracic Surgery
[5] Helen DeVos Children’s Hospital of Spectrum Health,Congenital Heart Center and Division Chief, Pediatric Cardiology
[6] Helen DeVos Children’s Hospital of Spectrum Health,undefined
[7] Helen DeVos Children’s Hospital of Spectrum Health,undefined
来源
关键词
3D echocardiography; Computed tomography; 3D imaging; 3D segmentation; Registration; Integration; 3D reconstruction; Cardiac imaging; Clinical application;
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学科分类号
摘要
Three-dimensional (3D) printing is an emerging technology aiding diagnostics, education, and interventional, and surgical planning in congenital heart disease (CHD). Three-dimensional printing has been derived from computed tomography, cardiac magnetic resonance, and 3D echocardiography. However, individually the imaging modalities may not provide adequate visualization of complex CHD. The integration of the strengths of two or more imaging modalities has the potential to enhance visualization of cardiac pathomorphology. We describe the feasibility of hybrid 3D printing from two imaging modalities in a patient with congenitally corrected transposition of the great arteries (L-TGA). Hybrid 3D printing may be useful as an additional tool for cardiologists and cardiothoracic surgeons in planning interventions in children and adults with CHD.
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页码:665 / 669
页数:4
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