| Literature DB >> 30771098 |
Volkan Tuncay1, Peter M A van Ooijen2.
Abstract
BACKGROUND: Current developments showed a fast-increasing implementation and use of three-dimensional (3D) printing in medical applications. Our aim was to review the literature regarding the application of 3D printing to cardiac valve disease.Entities:
Keywords: Heart valves; Printing (three-dimensional); Stereolithography; Tomography (x-ray computed); Ultrasonography
Year: 2019 PMID: 30771098 PMCID: PMC6377684 DOI: 10.1186/s41747-018-0083-0
Source DB: PubMed Journal: Eur Radiol Exp ISSN: 2509-9280
Fig. 1Number of publications on 3D printing in the application of cardiac valve assessment or replacement
Fig. 2Frequency of use of different imaging modality providing the source data
Fig. 3Example of the right ventricle outflow tract and main pulmonary artery print in flexible, non-transparent material in its normal (a) and squeezed (b) form
3D printing materials for cardiac valve replacement: intended uses and application areas
| First author [reference number] | Intended use | Application area | Printing material | Post-treatment material |
|---|---|---|---|---|
| Abdel-Sayed [ | Training | Trans-apical aortic valve replacement | Silicone | Silicone coating |
| Biglino [ | Device testing | Material testing for cardiovascular application | TangoPlus FullCure 930 | None |
| Fujita [ | Preoperative planning | Transcatheter aortic valve implantation | Acrylonitrile butadiene styrene | Silicone coating |
| Fujita [ | Retrospective procedure evaluation | Transcatheter aortic valve implantation | TangoPlus FullCure 930 | Silicone coating |
| Fujita [ | Preoperative planning | Transcatheter aortic valve implantation | Photopolymer resin | None |
| Izzo [ | Preoperative planning | Transcatheter native mitral valve replacement | TangoPlus FullCure 930 | None |
| Kalejs [ | Device testing | Aortic valve replacement | Silicone | Silicone coating |
| Maragiannis [ | Training | Aortic valve stenosis | TangoPlus FullCure 930 | Silicone coating |
| Mashari [ | Device testing | Mitral valve models | Moldstar 15 + Ecoflex 0030 | Silicone coating |
| Ripley [ | Preoperative planning | Transcatheter aortic valve implantation | Clear flexible resin | None |
| Sardari Nia [ | Preoperative planning | Mitral valve intervention | Acrylonitrile butadiene styrene | Silicone coating |
| Vukicevic [ | Training | Mitral valve intervention | TangoPlus FullCure 930 | None |
| Witschey [ | Preoperative planning | Mitral valve intervention | Acrylonitrile butadiene styrene | None |
| Owais [ | Preoperative planning | Mitral annuli | Acrylonitrile butadiene styrene | None |
Fig. 4a, b Examples of prints of the aortic valve in a flexible transparent material with calcifications in blue non-flexible material
3D printing for cardiac valve replacement: required time for different printed objects with various printing techniques
| First author [reference number] | Printer | Print method | Post-treatment | Printed object | Time |
|---|---|---|---|---|---|
| Abdel-Sayed [ | FDM syringe with silicone | FDM | Dip-coating with silicone | Simplified heart model | 3 days |
| Biglino [ | PolyJet | PolyJet | None | Descending aorta | 12 h |
| Kalejs [ | Fab@Home | FDM | Dip-coating with silicone | Aortic root model | 200 min |
| Mahmood [ | Objet260 Connex | PolyJet | NA | Mitral valve | 90 min |
| Mahmood [ | Makerbot Replicator 2X | FDM | None | Mitral annulus | 30 min |
| Mashari [ | Makerbot Replicator 2X | FDM | Silicone casting | Mitral valve | 2–5 h |
| Muraru [ | Formiga P110 | Laser sintering | NA | Tricuspid valve | 90–120 min |
| Ripley [ | Form 1 Plus | SLT | NA | Aortic root | 5 h |
| Owais [ | Makerbot Replicator 2X | FDM | None | Aortic annulus | 15 min |
FDM fused deposition modeling, SLT stereolithography, NA not applicable
Fig. 5Example of a vessel print with support structures. When the vessel is printed in the anatomically correct orientation (a), it is running perpendicular to the printing surface and thus a lot of support material is required. When re-oriented and printed parallel to the printing surface (b), less support is required
Fig. 6Sample schematic setup of an experimental environment to test valves. The 3D printed valve would be included in the valve implementation part inside the flow loop (blue lines)