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Patient-specific neurosurgical phantom: assessment of visual quality, accuracy, and scaling effects

BACKGROUND: Training in medical education depends on the availability of standardized materials that can reliably mimic the human anatomy and physiology. One alternative to using cadavers or animal bodies is to employ phantoms or mimicking devices. Styrene-ethylene/butylene-styrene (SEBS) gels are b...

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Autores principales: Grillo, Felipe Wilker, Souza, Victor Hugo, Matsuda, Renan Hiroshi, Rondinoni, Carlo, Pavan, Theo Zeferino, Baffa, Oswaldo, Machado, Helio Rubens, Carneiro, Antonio Adilton Oliveira
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Springer International Publishing 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5954795/
https://www.ncbi.nlm.nih.gov/pubmed/29782617
http://dx.doi.org/10.1186/s41205-018-0025-8
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author Grillo, Felipe Wilker
Souza, Victor Hugo
Matsuda, Renan Hiroshi
Rondinoni, Carlo
Pavan, Theo Zeferino
Baffa, Oswaldo
Machado, Helio Rubens
Carneiro, Antonio Adilton Oliveira
author_facet Grillo, Felipe Wilker
Souza, Victor Hugo
Matsuda, Renan Hiroshi
Rondinoni, Carlo
Pavan, Theo Zeferino
Baffa, Oswaldo
Machado, Helio Rubens
Carneiro, Antonio Adilton Oliveira
author_sort Grillo, Felipe Wilker
collection PubMed
description BACKGROUND: Training in medical education depends on the availability of standardized materials that can reliably mimic the human anatomy and physiology. One alternative to using cadavers or animal bodies is to employ phantoms or mimicking devices. Styrene-ethylene/butylene-styrene (SEBS) gels are biologically inert and present tunable properties, including mechanical properties that resemble the soft tissue. Therefore, SEBS is an alternative to develop a patient-specific phantom, that provides real visual and morphological experience during simulation-based neurosurgical training. RESULTS: A 3D model was reconstructed and printed based on patient-specific magnetic resonance images. The fused deposition of polyactic acid (PLA) filament and selective laser sintering of polyamid were used for 3D printing. Silicone and SEBS materials were employed to mimic soft tissues. A neuronavigation protocol was performed on the 3D-printed models scaled to three different sizes, 100%, 50%, and 25% of the original dimensions. A neurosurgery team (17 individuals) evaluated the phantom realism as “very good” and “perfect” in 49% and 31% of the cases, respectively, and rated phantom utility as “very good” and “perfect” in 61% and 32% of the cases, respectively. Models in original size (100%) and scaled to 50% provided a quantitative and realistic visual analysis of the patient’s cortical anatomy without distortion. However, reduction to one quarter of the original size (25%) hindered visualization of surface details and identification of anatomical landmarks. CONCLUSIONS: A patient-specific phantom was developed with anatomically and spatially accurate shapes, that can be used as an alternative for surgical planning. Printed models scaled to sizes that avoided quality loss might save time and reduce medical training costs.
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spelling pubmed-59547952018-05-18 Patient-specific neurosurgical phantom: assessment of visual quality, accuracy, and scaling effects Grillo, Felipe Wilker Souza, Victor Hugo Matsuda, Renan Hiroshi Rondinoni, Carlo Pavan, Theo Zeferino Baffa, Oswaldo Machado, Helio Rubens Carneiro, Antonio Adilton Oliveira 3D Print Med Research BACKGROUND: Training in medical education depends on the availability of standardized materials that can reliably mimic the human anatomy and physiology. One alternative to using cadavers or animal bodies is to employ phantoms or mimicking devices. Styrene-ethylene/butylene-styrene (SEBS) gels are biologically inert and present tunable properties, including mechanical properties that resemble the soft tissue. Therefore, SEBS is an alternative to develop a patient-specific phantom, that provides real visual and morphological experience during simulation-based neurosurgical training. RESULTS: A 3D model was reconstructed and printed based on patient-specific magnetic resonance images. The fused deposition of polyactic acid (PLA) filament and selective laser sintering of polyamid were used for 3D printing. Silicone and SEBS materials were employed to mimic soft tissues. A neuronavigation protocol was performed on the 3D-printed models scaled to three different sizes, 100%, 50%, and 25% of the original dimensions. A neurosurgery team (17 individuals) evaluated the phantom realism as “very good” and “perfect” in 49% and 31% of the cases, respectively, and rated phantom utility as “very good” and “perfect” in 61% and 32% of the cases, respectively. Models in original size (100%) and scaled to 50% provided a quantitative and realistic visual analysis of the patient’s cortical anatomy without distortion. However, reduction to one quarter of the original size (25%) hindered visualization of surface details and identification of anatomical landmarks. CONCLUSIONS: A patient-specific phantom was developed with anatomically and spatially accurate shapes, that can be used as an alternative for surgical planning. Printed models scaled to sizes that avoided quality loss might save time and reduce medical training costs. Springer International Publishing 2018-03-13 /pmc/articles/PMC5954795/ /pubmed/29782617 http://dx.doi.org/10.1186/s41205-018-0025-8 Text en © The Author(s) 2018 Open AccessThis article is distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made.
spellingShingle Research
Grillo, Felipe Wilker
Souza, Victor Hugo
Matsuda, Renan Hiroshi
Rondinoni, Carlo
Pavan, Theo Zeferino
Baffa, Oswaldo
Machado, Helio Rubens
Carneiro, Antonio Adilton Oliveira
Patient-specific neurosurgical phantom: assessment of visual quality, accuracy, and scaling effects
title Patient-specific neurosurgical phantom: assessment of visual quality, accuracy, and scaling effects
title_full Patient-specific neurosurgical phantom: assessment of visual quality, accuracy, and scaling effects
title_fullStr Patient-specific neurosurgical phantom: assessment of visual quality, accuracy, and scaling effects
title_full_unstemmed Patient-specific neurosurgical phantom: assessment of visual quality, accuracy, and scaling effects
title_short Patient-specific neurosurgical phantom: assessment of visual quality, accuracy, and scaling effects
title_sort patient-specific neurosurgical phantom: assessment of visual quality, accuracy, and scaling effects
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5954795/
https://www.ncbi.nlm.nih.gov/pubmed/29782617
http://dx.doi.org/10.1186/s41205-018-0025-8
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