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Development of a Three-dimensional Surgical Navigation System with Magnetic Resonance Angiography and a Three-dimensional Printer for Robot-assisted Radical Prostatectomy

We sought to develop a surgical navigation system using magnetic resonance angiography (MRA) and a three-dimensional (3D) printer for robot-assisted radical prostatectomy (RARP). Six patients with pathologically proven localized prostate cancer were prospectively enrolled in this study. Prostate mag...

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Autores principales: Jomoto, Wataru, Tanooka, Masao, Doi, Hiroshi, Kikuchi, Keisuke, Mitsuie, Chiemi, Yamada, Yusuke, Suzuki, Toru, Yamano, Toshiko, Ishikura, Reiichi, Kotoura, Noriko, Yamamoto, Shingo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cureus 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5837468/
https://www.ncbi.nlm.nih.gov/pubmed/29531871
http://dx.doi.org/10.7759/cureus.2018
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author Jomoto, Wataru
Tanooka, Masao
Doi, Hiroshi
Kikuchi, Keisuke
Mitsuie, Chiemi
Yamada, Yusuke
Suzuki, Toru
Yamano, Toshiko
Ishikura, Reiichi
Kotoura, Noriko
Yamamoto, Shingo
author_facet Jomoto, Wataru
Tanooka, Masao
Doi, Hiroshi
Kikuchi, Keisuke
Mitsuie, Chiemi
Yamada, Yusuke
Suzuki, Toru
Yamano, Toshiko
Ishikura, Reiichi
Kotoura, Noriko
Yamamoto, Shingo
author_sort Jomoto, Wataru
collection PubMed
description We sought to develop a surgical navigation system using magnetic resonance angiography (MRA) and a three-dimensional (3D) printer for robot-assisted radical prostatectomy (RARP). Six patients with pathologically proven localized prostate cancer were prospectively enrolled in this study. Prostate magnetic resonance imaging (MRI), consisting of T2-weighted sampling perfection with application-optimized contrasts using different flip-angle evolutions (SPACE) and true fast imaging with steady-state precession (true FISP), reconstructed by volume rendering, was followed by dynamic contrast-enhanced MRA performed with a volumetric interpolated breath-hold examination (VIBE) during intravenous bolus injection of gadobutrol. Images of arterial and venous phases were acquired over approximately 210 seconds. Selected images were sent to a workstation for generation of 3D volume-rendered images and standard triangulated language (STL) files for 3D print construction. The neurovascular bundles (NVBs) were found in sequence on non-contrast images. Accessory pudendal arteries (APAs) were found in all cases in the arterial phase of contrast enhancement but were ill-defined on non-contrast enhanced MRA. Dynamic contrast-enhanced MRA helped to detect APAs, suggesting that this 3D system using MRI will be useful in RARP.
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spelling pubmed-58374682018-03-12 Development of a Three-dimensional Surgical Navigation System with Magnetic Resonance Angiography and a Three-dimensional Printer for Robot-assisted Radical Prostatectomy Jomoto, Wataru Tanooka, Masao Doi, Hiroshi Kikuchi, Keisuke Mitsuie, Chiemi Yamada, Yusuke Suzuki, Toru Yamano, Toshiko Ishikura, Reiichi Kotoura, Noriko Yamamoto, Shingo Cureus Medical Simulation We sought to develop a surgical navigation system using magnetic resonance angiography (MRA) and a three-dimensional (3D) printer for robot-assisted radical prostatectomy (RARP). Six patients with pathologically proven localized prostate cancer were prospectively enrolled in this study. Prostate magnetic resonance imaging (MRI), consisting of T2-weighted sampling perfection with application-optimized contrasts using different flip-angle evolutions (SPACE) and true fast imaging with steady-state precession (true FISP), reconstructed by volume rendering, was followed by dynamic contrast-enhanced MRA performed with a volumetric interpolated breath-hold examination (VIBE) during intravenous bolus injection of gadobutrol. Images of arterial and venous phases were acquired over approximately 210 seconds. Selected images were sent to a workstation for generation of 3D volume-rendered images and standard triangulated language (STL) files for 3D print construction. The neurovascular bundles (NVBs) were found in sequence on non-contrast images. Accessory pudendal arteries (APAs) were found in all cases in the arterial phase of contrast enhancement but were ill-defined on non-contrast enhanced MRA. Dynamic contrast-enhanced MRA helped to detect APAs, suggesting that this 3D system using MRI will be useful in RARP. Cureus 2018-01-02 /pmc/articles/PMC5837468/ /pubmed/29531871 http://dx.doi.org/10.7759/cureus.2018 Text en Copyright © 2018, Jomoto et al. http://creativecommons.org/licenses/by/3.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Medical Simulation
Jomoto, Wataru
Tanooka, Masao
Doi, Hiroshi
Kikuchi, Keisuke
Mitsuie, Chiemi
Yamada, Yusuke
Suzuki, Toru
Yamano, Toshiko
Ishikura, Reiichi
Kotoura, Noriko
Yamamoto, Shingo
Development of a Three-dimensional Surgical Navigation System with Magnetic Resonance Angiography and a Three-dimensional Printer for Robot-assisted Radical Prostatectomy
title Development of a Three-dimensional Surgical Navigation System with Magnetic Resonance Angiography and a Three-dimensional Printer for Robot-assisted Radical Prostatectomy
title_full Development of a Three-dimensional Surgical Navigation System with Magnetic Resonance Angiography and a Three-dimensional Printer for Robot-assisted Radical Prostatectomy
title_fullStr Development of a Three-dimensional Surgical Navigation System with Magnetic Resonance Angiography and a Three-dimensional Printer for Robot-assisted Radical Prostatectomy
title_full_unstemmed Development of a Three-dimensional Surgical Navigation System with Magnetic Resonance Angiography and a Three-dimensional Printer for Robot-assisted Radical Prostatectomy
title_short Development of a Three-dimensional Surgical Navigation System with Magnetic Resonance Angiography and a Three-dimensional Printer for Robot-assisted Radical Prostatectomy
title_sort development of a three-dimensional surgical navigation system with magnetic resonance angiography and a three-dimensional printer for robot-assisted radical prostatectomy
topic Medical Simulation
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5837468/
https://www.ncbi.nlm.nih.gov/pubmed/29531871
http://dx.doi.org/10.7759/cureus.2018
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