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Clinical Study of Orthogonal-View Phase-Matched Digital Tomosynthesis for Lung Tumor Localization

BACKGROUND AND PURPOSE: Compared to cone-beam computed tomography, digital tomosynthesis imaging has the benefits of shorter scanning time, less imaging dose, and better mechanical clearance for tumor localization in radiation therapy. However, for lung tumors, the localization accuracy of the conve...

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Autores principales: Zhang, You, Ren, Lei, Vergalasova, Irina, Yin, Fang-Fang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: SAGE Publications 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5547009/
https://www.ncbi.nlm.nih.gov/pubmed/28449625
http://dx.doi.org/10.1177/1533034617705716
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author Zhang, You
Ren, Lei
Vergalasova, Irina
Yin, Fang-Fang
author_facet Zhang, You
Ren, Lei
Vergalasova, Irina
Yin, Fang-Fang
author_sort Zhang, You
collection PubMed
description BACKGROUND AND PURPOSE: Compared to cone-beam computed tomography, digital tomosynthesis imaging has the benefits of shorter scanning time, less imaging dose, and better mechanical clearance for tumor localization in radiation therapy. However, for lung tumors, the localization accuracy of the conventional digital tomosynthesis technique is affected by the lack of depth information and the existence of lung tumor motion. This study investigates the clinical feasibility of using an orthogonal-view phase-matched digital tomosynthesis technique to improve the accuracy of lung tumor localization. MATERIALS AND METHODS: The proposed orthogonal-view phase-matched digital tomosynthesis technique benefits from 2 major features: (1) it acquires orthogonal-view projections to improve the depth information in reconstructed digital tomosynthesis images and (2) it applies respiratory phase-matching to incorporate patient motion information into the synthesized reference digital tomosynthesis sets, which helps to improve the localization accuracy of moving lung tumors. A retrospective study enrolling 14 patients was performed to evaluate the accuracy of the orthogonal-view phase-matched digital tomosynthesis technique. Phantom studies were also performed using an anthropomorphic phantom to investigate the feasibility of using intratreatment aggregated kV and beams’ eye view cine MV projections for orthogonal-view phase-matched digital tomosynthesis imaging. The localization accuracy of the orthogonal-view phase-matched digital tomosynthesis technique was compared to that of the single-view digital tomosynthesis techniques and the digital tomosynthesis techniques without phase-matching. RESULTS: The orthogonal-view phase-matched digital tomosynthesis technique outperforms the other digital tomosynthesis techniques in tumor localization accuracy for both the patient study and the phantom study. For the patient study, the orthogonal-view phase-matched digital tomosynthesis technique localizes the tumor to an average (± standard deviation) error of 1.8 (0.7) mm for a 30° total scan angle. For the phantom study using aggregated kV–MV projections, the orthogonal-view phase-matched digital tomosynthesis localizes the tumor to an average error within 1 mm for varying magnitudes of scan angles. CONCLUSION: The pilot clinical study shows that the orthogonal-view phase-matched digital tomosynthesis technique enables fast and accurate localization of moving lung tumors.
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spelling pubmed-55470092018-01-17 Clinical Study of Orthogonal-View Phase-Matched Digital Tomosynthesis for Lung Tumor Localization Zhang, You Ren, Lei Vergalasova, Irina Yin, Fang-Fang Technol Cancer Res Treat Original Articles BACKGROUND AND PURPOSE: Compared to cone-beam computed tomography, digital tomosynthesis imaging has the benefits of shorter scanning time, less imaging dose, and better mechanical clearance for tumor localization in radiation therapy. However, for lung tumors, the localization accuracy of the conventional digital tomosynthesis technique is affected by the lack of depth information and the existence of lung tumor motion. This study investigates the clinical feasibility of using an orthogonal-view phase-matched digital tomosynthesis technique to improve the accuracy of lung tumor localization. MATERIALS AND METHODS: The proposed orthogonal-view phase-matched digital tomosynthesis technique benefits from 2 major features: (1) it acquires orthogonal-view projections to improve the depth information in reconstructed digital tomosynthesis images and (2) it applies respiratory phase-matching to incorporate patient motion information into the synthesized reference digital tomosynthesis sets, which helps to improve the localization accuracy of moving lung tumors. A retrospective study enrolling 14 patients was performed to evaluate the accuracy of the orthogonal-view phase-matched digital tomosynthesis technique. Phantom studies were also performed using an anthropomorphic phantom to investigate the feasibility of using intratreatment aggregated kV and beams’ eye view cine MV projections for orthogonal-view phase-matched digital tomosynthesis imaging. The localization accuracy of the orthogonal-view phase-matched digital tomosynthesis technique was compared to that of the single-view digital tomosynthesis techniques and the digital tomosynthesis techniques without phase-matching. RESULTS: The orthogonal-view phase-matched digital tomosynthesis technique outperforms the other digital tomosynthesis techniques in tumor localization accuracy for both the patient study and the phantom study. For the patient study, the orthogonal-view phase-matched digital tomosynthesis technique localizes the tumor to an average (± standard deviation) error of 1.8 (0.7) mm for a 30° total scan angle. For the phantom study using aggregated kV–MV projections, the orthogonal-view phase-matched digital tomosynthesis localizes the tumor to an average error within 1 mm for varying magnitudes of scan angles. CONCLUSION: The pilot clinical study shows that the orthogonal-view phase-matched digital tomosynthesis technique enables fast and accurate localization of moving lung tumors. SAGE Publications 2017-04-28 2017-12 /pmc/articles/PMC5547009/ /pubmed/28449625 http://dx.doi.org/10.1177/1533034617705716 Text en © The Author(s) 2017 http://creativecommons.org/licenses/by-nc/3.0/ This article is distributed under the terms of the Creative Commons Attribution-NonCommercial 3.0 License (http://www.creativecommons.org/licenses/by-nc/3.0/) which permits non-commercial use, reproduction and distribution of the work without further permission provided the original work is attributed as specified on the SAGE and Open Access pages (https://us.sagepub.com/en-us/nam/open-access-at-sage).
spellingShingle Original Articles
Zhang, You
Ren, Lei
Vergalasova, Irina
Yin, Fang-Fang
Clinical Study of Orthogonal-View Phase-Matched Digital Tomosynthesis for Lung Tumor Localization
title Clinical Study of Orthogonal-View Phase-Matched Digital Tomosynthesis for Lung Tumor Localization
title_full Clinical Study of Orthogonal-View Phase-Matched Digital Tomosynthesis for Lung Tumor Localization
title_fullStr Clinical Study of Orthogonal-View Phase-Matched Digital Tomosynthesis for Lung Tumor Localization
title_full_unstemmed Clinical Study of Orthogonal-View Phase-Matched Digital Tomosynthesis for Lung Tumor Localization
title_short Clinical Study of Orthogonal-View Phase-Matched Digital Tomosynthesis for Lung Tumor Localization
title_sort clinical study of orthogonal-view phase-matched digital tomosynthesis for lung tumor localization
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5547009/
https://www.ncbi.nlm.nih.gov/pubmed/28449625
http://dx.doi.org/10.1177/1533034617705716
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