Operative Workflow from CT to 3D Printing of the Heart: Opportunities and Challenges

Medical images do not provide a natural visualization of 3D anatomical structures, while 3D digital models are able to solve this problem. Interesting applications based on these models can be found in the cardiovascular field. The generation of a good-quality anatomical model of the heart is one of...

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Hlavní autoři: Michele Bertolini, Marco Rossoni, Giorgio Colombo
Médium: Článek
Jazyk:English
Vydáno: MDPI AG 2021-09-01
Edice:Bioengineering
Témata:
On-line přístup:https://www.mdpi.com/2306-5354/8/10/130
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author Michele Bertolini
Marco Rossoni
Giorgio Colombo
author_facet Michele Bertolini
Marco Rossoni
Giorgio Colombo
author_sort Michele Bertolini
collection DOAJ
description Medical images do not provide a natural visualization of 3D anatomical structures, while 3D digital models are able to solve this problem. Interesting applications based on these models can be found in the cardiovascular field. The generation of a good-quality anatomical model of the heart is one of the most complex tasks in this context. Its 3D representation has the potential to provide detailed spatial information concerning the heart’s structure, also offering the opportunity for further investigations if combined with additive manufacturing. When investigated, the adaption of printed models turned out to be beneficial in complex surgical procedure planning, for training, education and medical communication. In this paper, we will illustrate the difficulties that may be encountered in the workflow from a stack of Computed Tomography (CT) to the hand-held printed heart model. An important goal will consist in the realization of a heart model that can take into account real wall thickness variability. Stereolithography printing technology will be exploited with a commercial rigid resin. A flexible material will be tested too, but results will not be so satisfactory. As a preliminary validation of this kind of approach, print accuracy will be evaluated by directly comparing 3D scanner acquisitions to the original Standard Tessellation Language (STL) files.
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spelling doaj.art-c67b51d7029a4c2e93c77041e41ce9fc2023-11-22T17:26:48ZengMDPI AGBioengineering2306-53542021-09-0181013010.3390/bioengineering8100130Operative Workflow from CT to 3D Printing of the Heart: Opportunities and ChallengesMichele Bertolini0Marco Rossoni1Giorgio Colombo2Department of Mechanical Engineering, Politecnico di Milano, 20156 Milano, ItalyDepartment of Mechanical Engineering, Politecnico di Milano, 20156 Milano, ItalyDepartment of Mechanical Engineering, Politecnico di Milano, 20156 Milano, ItalyMedical images do not provide a natural visualization of 3D anatomical structures, while 3D digital models are able to solve this problem. Interesting applications based on these models can be found in the cardiovascular field. The generation of a good-quality anatomical model of the heart is one of the most complex tasks in this context. Its 3D representation has the potential to provide detailed spatial information concerning the heart’s structure, also offering the opportunity for further investigations if combined with additive manufacturing. When investigated, the adaption of printed models turned out to be beneficial in complex surgical procedure planning, for training, education and medical communication. In this paper, we will illustrate the difficulties that may be encountered in the workflow from a stack of Computed Tomography (CT) to the hand-held printed heart model. An important goal will consist in the realization of a heart model that can take into account real wall thickness variability. Stereolithography printing technology will be exploited with a commercial rigid resin. A flexible material will be tested too, but results will not be so satisfactory. As a preliminary validation of this kind of approach, print accuracy will be evaluated by directly comparing 3D scanner acquisitions to the original Standard Tessellation Language (STL) files.https://www.mdpi.com/2306-5354/8/10/130patient-specific modelingsegmentationheart model3D printingstereolithography
spellingShingle Michele Bertolini
Marco Rossoni
Giorgio Colombo
Operative Workflow from CT to 3D Printing of the Heart: Opportunities and Challenges
Bioengineering
patient-specific modeling
segmentation
heart model
3D printing
stereolithography
title Operative Workflow from CT to 3D Printing of the Heart: Opportunities and Challenges
title_full Operative Workflow from CT to 3D Printing of the Heart: Opportunities and Challenges
title_fullStr Operative Workflow from CT to 3D Printing of the Heart: Opportunities and Challenges
title_full_unstemmed Operative Workflow from CT to 3D Printing of the Heart: Opportunities and Challenges
title_short Operative Workflow from CT to 3D Printing of the Heart: Opportunities and Challenges
title_sort operative workflow from ct to 3d printing of the heart opportunities and challenges
topic patient-specific modeling
segmentation
heart model
3D printing
stereolithography
url https://www.mdpi.com/2306-5354/8/10/130
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