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4D registration and 4D verification of lung tumor position for stereotactic volumetric modulated arc therapy using respiratory-correlated cone-beam CT

We propose a clinical workflow of stereotactic volumetric modulated arc therapy (VMAT) for a lung tumor from planning to tumor position verification using 4D planning computed tomography (CT) and 4D cone-beam CT (CBCT). A 4D CT scanner, an Anzai belt and a BodyFix were employed to obtain 10-phase re...

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Autores principales: Nakagawa, Keiichi, Haga, Akihiro, Kida, Satoshi, Masutani, Yoshitaka, Yamashita, Hideomi, Takahashi, Wataru, Sakumi, Akira, Saotome, Naoya, Shiraki, Takashi, Ohtomo, Kuni, Iwai, Yoshio, Yoda, Kiyoshi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3534265/
https://www.ncbi.nlm.nih.gov/pubmed/22843380
http://dx.doi.org/10.1093/jrr/rrs058
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author Nakagawa, Keiichi
Haga, Akihiro
Kida, Satoshi
Masutani, Yoshitaka
Yamashita, Hideomi
Takahashi, Wataru
Sakumi, Akira
Saotome, Naoya
Shiraki, Takashi
Ohtomo, Kuni
Iwai, Yoshio
Yoda, Kiyoshi
author_facet Nakagawa, Keiichi
Haga, Akihiro
Kida, Satoshi
Masutani, Yoshitaka
Yamashita, Hideomi
Takahashi, Wataru
Sakumi, Akira
Saotome, Naoya
Shiraki, Takashi
Ohtomo, Kuni
Iwai, Yoshio
Yoda, Kiyoshi
author_sort Nakagawa, Keiichi
collection PubMed
description We propose a clinical workflow of stereotactic volumetric modulated arc therapy (VMAT) for a lung tumor from planning to tumor position verification using 4D planning computed tomography (CT) and 4D cone-beam CT (CBCT). A 4D CT scanner, an Anzai belt and a BodyFix were employed to obtain 10-phase respiratory-correlated CT data for a lung patient under constrained breathing conditions. A planning target volume (PTV) was defined by adding a 5-mm margin to an internal target volume created from 10 clinical target volumes, each of which was delineated on each of the 10-phase planning CT data. A single-arc VMAT plan was created with a D(95) prescription dose of 50 Gy in four fractions on the maximum exhalation phase CT images. The PTV contours were exported to a kilovoltage CBCT X-ray Volume Imaging (XVI) equipped with a linear accelerator (linac). Immediately before treatment, 10-phase 4D CBCT images were reconstructed leading to animated lung tumor imaging. Initial bone matching was performed between frame-averaged 4D planning CT and frame-averaged 4D CBCT datasets. Subsequently, the imported PTV contours and the animated moving tumor were simultaneously displayed on the XVI monitor, and a manual 4D registration was interactively performed on the monitor until the moving tumor was symmetrically positioned inside the PTV. A VMAT beam was delivered to the patient and during the delivery further 4D CBCT projection data were acquired to verify the tumor position. The entire process was repeated for each fraction. It was confirmed that the moving tumor was positioned inside the PTV during the VMAT delivery.
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spelling pubmed-35342652013-01-03 4D registration and 4D verification of lung tumor position for stereotactic volumetric modulated arc therapy using respiratory-correlated cone-beam CT Nakagawa, Keiichi Haga, Akihiro Kida, Satoshi Masutani, Yoshitaka Yamashita, Hideomi Takahashi, Wataru Sakumi, Akira Saotome, Naoya Shiraki, Takashi Ohtomo, Kuni Iwai, Yoshio Yoda, Kiyoshi J Radiat Res Technology We propose a clinical workflow of stereotactic volumetric modulated arc therapy (VMAT) for a lung tumor from planning to tumor position verification using 4D planning computed tomography (CT) and 4D cone-beam CT (CBCT). A 4D CT scanner, an Anzai belt and a BodyFix were employed to obtain 10-phase respiratory-correlated CT data for a lung patient under constrained breathing conditions. A planning target volume (PTV) was defined by adding a 5-mm margin to an internal target volume created from 10 clinical target volumes, each of which was delineated on each of the 10-phase planning CT data. A single-arc VMAT plan was created with a D(95) prescription dose of 50 Gy in four fractions on the maximum exhalation phase CT images. The PTV contours were exported to a kilovoltage CBCT X-ray Volume Imaging (XVI) equipped with a linear accelerator (linac). Immediately before treatment, 10-phase 4D CBCT images were reconstructed leading to animated lung tumor imaging. Initial bone matching was performed between frame-averaged 4D planning CT and frame-averaged 4D CBCT datasets. Subsequently, the imported PTV contours and the animated moving tumor were simultaneously displayed on the XVI monitor, and a manual 4D registration was interactively performed on the monitor until the moving tumor was symmetrically positioned inside the PTV. A VMAT beam was delivered to the patient and during the delivery further 4D CBCT projection data were acquired to verify the tumor position. The entire process was repeated for each fraction. It was confirmed that the moving tumor was positioned inside the PTV during the VMAT delivery. Oxford University Press 2013-01 2012-07-22 /pmc/articles/PMC3534265/ /pubmed/22843380 http://dx.doi.org/10.1093/jrr/rrs058 Text en © The Author 2012. Published by Oxford University Press on behalf of The Japan Radiation Research Society and Japanese Society for Therapeutic Radiology and Oncology. http://creativecommons.org/licenses/by-nc/3.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/3.0/), which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Technology
Nakagawa, Keiichi
Haga, Akihiro
Kida, Satoshi
Masutani, Yoshitaka
Yamashita, Hideomi
Takahashi, Wataru
Sakumi, Akira
Saotome, Naoya
Shiraki, Takashi
Ohtomo, Kuni
Iwai, Yoshio
Yoda, Kiyoshi
4D registration and 4D verification of lung tumor position for stereotactic volumetric modulated arc therapy using respiratory-correlated cone-beam CT
title 4D registration and 4D verification of lung tumor position for stereotactic volumetric modulated arc therapy using respiratory-correlated cone-beam CT
title_full 4D registration and 4D verification of lung tumor position for stereotactic volumetric modulated arc therapy using respiratory-correlated cone-beam CT
title_fullStr 4D registration and 4D verification of lung tumor position for stereotactic volumetric modulated arc therapy using respiratory-correlated cone-beam CT
title_full_unstemmed 4D registration and 4D verification of lung tumor position for stereotactic volumetric modulated arc therapy using respiratory-correlated cone-beam CT
title_short 4D registration and 4D verification of lung tumor position for stereotactic volumetric modulated arc therapy using respiratory-correlated cone-beam CT
title_sort 4d registration and 4d verification of lung tumor position for stereotactic volumetric modulated arc therapy using respiratory-correlated cone-beam ct
topic Technology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3534265/
https://www.ncbi.nlm.nih.gov/pubmed/22843380
http://dx.doi.org/10.1093/jrr/rrs058
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