Cargando…

Beam‐specific planning target volumes incorporating 4D CT for pencil beam scanning proton therapy of thoracic tumors

The purpose of this study is to determine whether organ sparing and target coverage can be simultaneously maintained for pencil beam scanning (PBS) proton therapy treatment of thoracic tumors in the presence of motion, stopping power uncertainties, and patient setup variations. Ten consecutive patie...

Descripción completa

Detalles Bibliográficos
Autores principales: Lin, Liyong, Kang, Minglei, Huang, Sheng, Mayer, Rulon, Thomas, Andrew, Solberg, Timothy D., McDonough, James E., Simone, Charles B.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5691001/
https://www.ncbi.nlm.nih.gov/pubmed/26699580
http://dx.doi.org/10.1120/jacmp.v16i6.5678
_version_ 1783279703648370688
author Lin, Liyong
Kang, Minglei
Huang, Sheng
Mayer, Rulon
Thomas, Andrew
Solberg, Timothy D.
McDonough, James E.
Simone, Charles B.
author_facet Lin, Liyong
Kang, Minglei
Huang, Sheng
Mayer, Rulon
Thomas, Andrew
Solberg, Timothy D.
McDonough, James E.
Simone, Charles B.
author_sort Lin, Liyong
collection PubMed
description The purpose of this study is to determine whether organ sparing and target coverage can be simultaneously maintained for pencil beam scanning (PBS) proton therapy treatment of thoracic tumors in the presence of motion, stopping power uncertainties, and patient setup variations. Ten consecutive patients that were previously treated with proton therapy to 66.6/1.8 Gy (RBE) using double scattering (DS) were replanned with PBS. Minimum and maximum intensity images from 4D CT were used to introduce flexible smearing in the determination of the beam specific PTV (BSPTV). Datasets from eight 4D CT phases, using [Formula: see text] uncertainty in stopping power and [Formula: see text] uncertainty in patient setup in each direction, were used to create [Formula: see text] PBS plans for the evaluation of 10 patients. Plans were normalized to provide identical coverage between DS and PBS. The average lung V20, V5, and mean doses were reduced from 29.0%, 35.0%, and 16.4 Gy with DS to 24.6%, 30.6%, and 14.1 Gy with PBS, respectively. The average heart V30 and V45 were reduced from 10.4% and 7.5% in DS to 8.1% and 5.4% for PBS, respectively. Furthermore, the maximum spinal cord, esophagus, and heart doses were decreased from 37.1 Gy, 71.7 Gy, and 69.2 Gy with DS to 31.3 Gy, 67.9 Gy, and 64.6 Gy with PBS. The conformity index (CI), homogeneity index (HI), and global maximal dose were improved from 3.2, 0.08, 77.4 Gy with DS to 2.8, 0.04, and 72.1 Gy with PBS. All differences are statistically significant, with p‐values [Formula: see text] , with the exception of the heart V45 ([Formula: see text]). PBS with BSPTV achieves better organ sparing and improves target coverage using a repainting method for the treatment of thoracic tumors. Incorporating motion‐related uncertainties is essential. PACS number: 87.55.D
format Online
Article
Text
id pubmed-5691001
institution National Center for Biotechnology Information
language English
publishDate 2015
publisher John Wiley and Sons Inc.
record_format MEDLINE/PubMed
spelling pubmed-56910012018-04-02 Beam‐specific planning target volumes incorporating 4D CT for pencil beam scanning proton therapy of thoracic tumors Lin, Liyong Kang, Minglei Huang, Sheng Mayer, Rulon Thomas, Andrew Solberg, Timothy D. McDonough, James E. Simone, Charles B. J Appl Clin Med Phys Radiation Oncology Physics The purpose of this study is to determine whether organ sparing and target coverage can be simultaneously maintained for pencil beam scanning (PBS) proton therapy treatment of thoracic tumors in the presence of motion, stopping power uncertainties, and patient setup variations. Ten consecutive patients that were previously treated with proton therapy to 66.6/1.8 Gy (RBE) using double scattering (DS) were replanned with PBS. Minimum and maximum intensity images from 4D CT were used to introduce flexible smearing in the determination of the beam specific PTV (BSPTV). Datasets from eight 4D CT phases, using [Formula: see text] uncertainty in stopping power and [Formula: see text] uncertainty in patient setup in each direction, were used to create [Formula: see text] PBS plans for the evaluation of 10 patients. Plans were normalized to provide identical coverage between DS and PBS. The average lung V20, V5, and mean doses were reduced from 29.0%, 35.0%, and 16.4 Gy with DS to 24.6%, 30.6%, and 14.1 Gy with PBS, respectively. The average heart V30 and V45 were reduced from 10.4% and 7.5% in DS to 8.1% and 5.4% for PBS, respectively. Furthermore, the maximum spinal cord, esophagus, and heart doses were decreased from 37.1 Gy, 71.7 Gy, and 69.2 Gy with DS to 31.3 Gy, 67.9 Gy, and 64.6 Gy with PBS. The conformity index (CI), homogeneity index (HI), and global maximal dose were improved from 3.2, 0.08, 77.4 Gy with DS to 2.8, 0.04, and 72.1 Gy with PBS. All differences are statistically significant, with p‐values [Formula: see text] , with the exception of the heart V45 ([Formula: see text]). PBS with BSPTV achieves better organ sparing and improves target coverage using a repainting method for the treatment of thoracic tumors. Incorporating motion‐related uncertainties is essential. PACS number: 87.55.D John Wiley and Sons Inc. 2015-11-08 /pmc/articles/PMC5691001/ /pubmed/26699580 http://dx.doi.org/10.1120/jacmp.v16i6.5678 Text en © 2015 The Authors. This is an open access article under the terms of the Creative Commons Attribution (http://creativecommons.org/licenses/by/3.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Radiation Oncology Physics
Lin, Liyong
Kang, Minglei
Huang, Sheng
Mayer, Rulon
Thomas, Andrew
Solberg, Timothy D.
McDonough, James E.
Simone, Charles B.
Beam‐specific planning target volumes incorporating 4D CT for pencil beam scanning proton therapy of thoracic tumors
title Beam‐specific planning target volumes incorporating 4D CT for pencil beam scanning proton therapy of thoracic tumors
title_full Beam‐specific planning target volumes incorporating 4D CT for pencil beam scanning proton therapy of thoracic tumors
title_fullStr Beam‐specific planning target volumes incorporating 4D CT for pencil beam scanning proton therapy of thoracic tumors
title_full_unstemmed Beam‐specific planning target volumes incorporating 4D CT for pencil beam scanning proton therapy of thoracic tumors
title_short Beam‐specific planning target volumes incorporating 4D CT for pencil beam scanning proton therapy of thoracic tumors
title_sort beam‐specific planning target volumes incorporating 4d ct for pencil beam scanning proton therapy of thoracic tumors
topic Radiation Oncology Physics
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5691001/
https://www.ncbi.nlm.nih.gov/pubmed/26699580
http://dx.doi.org/10.1120/jacmp.v16i6.5678
work_keys_str_mv AT linliyong beamspecificplanningtargetvolumesincorporating4dctforpencilbeamscanningprotontherapyofthoracictumors
AT kangminglei beamspecificplanningtargetvolumesincorporating4dctforpencilbeamscanningprotontherapyofthoracictumors
AT huangsheng beamspecificplanningtargetvolumesincorporating4dctforpencilbeamscanningprotontherapyofthoracictumors
AT mayerrulon beamspecificplanningtargetvolumesincorporating4dctforpencilbeamscanningprotontherapyofthoracictumors
AT thomasandrew beamspecificplanningtargetvolumesincorporating4dctforpencilbeamscanningprotontherapyofthoracictumors
AT solbergtimothyd beamspecificplanningtargetvolumesincorporating4dctforpencilbeamscanningprotontherapyofthoracictumors
AT mcdonoughjamese beamspecificplanningtargetvolumesincorporating4dctforpencilbeamscanningprotontherapyofthoracictumors
AT simonecharlesb beamspecificplanningtargetvolumesincorporating4dctforpencilbeamscanningprotontherapyofthoracictumors