Literature DB >> 18711250

On the impact of longitudinal breathing motion randomness for tomotherapy delivery.

Michael W Kissick1, Ryan T Flynn, David C Westerly, Peter W Hoban, Xiaohu Mo, Emilie T Soisson, Keisha C McCall, Thomas R Mackie, Robert Jeraj.   

Abstract

The purpose of this study is to explain the unplanned longitudinal dose modulations that appear in helical tomotherapy (HT) dose distributions in the presence of irregular patient breathing. This explanation is developed by the use of longitudinal (1D) simulations of mock and surrogate data and tested with a fully 4D HT delivered plan. The 1D simulations use a typical mock breathing function which allows more flexibility to adjust various parameters. These simplified simulations are then made more realistic by using 100 surrogate waveforms all similarly scaled to produce longitudinal breathing displacements. The results include the observation that, with many waveforms used simultaneously, a voxel-by-voxel probability of a dose error from breathing is found to be proportional to the realistically random breathing amplitude relative to the beam width if the PTV is larger than the beam width and the breathing displacement amplitude. The 4D experimental test confirms that regular breathing will not result in these modulations because of the insensitivity to leaf motion for low-frequency dynamics such as breathing. These modulations mostly result from a varying average of the breathing displacements along the beam edge gradients. Regular breathing has no displacement variation over many breathing cycles. Some low-frequency interference is also possible in real situations. In the absence of more sophisticated motion management, methods that reduce the breathing amplitude or make the breathing very regular are indicated. However, for typical breathing patterns and magnitudes, motion management techniques may not be required with HT because typical breathing occurs mostly between fundamental HT treatment temporal and spatial scales. A movement beyond only discussing margins is encouraged for intensity modulated radiotherapy such that patient and machine motion interference will be minimized and beneficial averaging maximized. These results are found for homogeneous and longitudinal on-axis delivery for unplanned longitudinal dose modulations.

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Year:  2008        PMID: 18711250      PMCID: PMC2610272          DOI: 10.1088/0031-9155/53/18/001

Source DB:  PubMed          Journal:  Phys Med Biol        ISSN: 0031-9155            Impact factor:   3.609


  18 in total

1.  A method for incorporating organ motion due to breathing into 3D dose calculations.

Authors:  A E Lujan; E W Larsen; J M Balter; R K Ten Haken
Journal:  Med Phys       Date:  1999-05       Impact factor: 4.071

2.  Accurate convolution/superposition for multi-resolution dose calculation using cumulative tabulated kernels.

Authors:  Weiguo Lu; Gustavo H Olivera; Ming-Li Chen; Paul J Reckwerdt; Thomas R Mackie
Journal:  Phys Med Biol       Date:  2005-02-21       Impact factor: 3.609

3.  Investigation of dose homogeneity for loose helical tomotherapy delivery in the context of breath-hold radiation therapy.

Authors:  Bryan Kim; Tomas Kron; Jerry Battista; Jake Van Dyk
Journal:  Phys Med Biol       Date:  2005-05-05       Impact factor: 3.609

4.  Confirmation, refinement, and extension of a study in intrafraction motion interplay with sliding jaw motion.

Authors:  Michael W Kissick; Sarah A Boswell; Robert Jeraj; T Rockwell Mackie
Journal:  Med Phys       Date:  2005-07       Impact factor: 4.071

5.  The helical tomotherapy thread effect.

Authors:  M W Kissick; J Fenwick; J A James; R Jeraj; J M Kapatoes; H Keller; T R Mackie; G Olivera; E T Soisson
Journal:  Med Phys       Date:  2005-05       Impact factor: 4.071

6.  Modelling simple helically delivered dose distributions.

Authors:  John D Fenwick; Wolfgang A Tomé; Michael W Kissick; T Rock Mackie
Journal:  Phys Med Biol       Date:  2005-03-22       Impact factor: 3.609

7.  The impact of linac output variations on dose distributions in helical tomotherapy.

Authors:  R T Flynn; M W Kissick; M P Mehta; G H Olivera; R Jeraj; T R Mackie
Journal:  Phys Med Biol       Date:  2007-12-28       Impact factor: 3.609

8.  Novel breathing motion model for radiotherapy.

Authors:  Daniel A Low; Parag J Parikh; Wei Lu; James F Dempsey; Sasha H Wahab; James P Hubenschmidt; Michelle M Nystrom; Maureen Handoko; Jeffrey D Bradley
Journal:  Int J Radiat Oncol Biol Phys       Date:  2005-11-01       Impact factor: 7.038

9.  Tomotherapy: a new concept for the delivery of dynamic conformal radiotherapy.

Authors:  T R Mackie; T Holmes; S Swerdloff; P Reckwerdt; J O Deasy; J Yang; B Paliwal; T Kinsella
Journal:  Med Phys       Date:  1993 Nov-Dec       Impact factor: 4.071

10.  Precise and real-time measurement of 3D tumor motion in lung due to breathing and heartbeat, measured during radiotherapy.

Authors:  Yvette Seppenwoolde; Hiroki Shirato; Kei Kitamura; Shinichi Shimizu; Marcel van Herk; Joos V Lebesque; Kazuo Miyasaka
Journal:  Int J Radiat Oncol Biol Phys       Date:  2002-07-15       Impact factor: 7.038

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  12 in total

1.  A phantom model demonstration of tomotherapy dose painting delivery, including managed respiratory motion without motion management.

Authors:  Michael W Kissick; Xiaohu Mo; Keisha C McCall; Leah K Schubert; David C Westerly; Thomas R Mackie
Journal:  Phys Med Biol       Date:  2010-04-30       Impact factor: 3.609

2.  Task Group 76 Report on 'The management of respiratory motion in radiation oncology' [Med. Phys. 33, 3874-3900 (2006)].

Authors:  Michael W Kissick; T Rockwell Mackie
Journal:  Med Phys       Date:  2009-12       Impact factor: 4.071

Review 3.  The radiation techniques of tomotherapy & intensity-modulated radiation therapy applied to lung cancer.

Authors:  Zhengfei Zhu; Xiaolong Fu
Journal:  Transl Lung Cancer Res       Date:  2015-06

4.  Erratum to: Molecular and cellular mechanisms that initiate pain and itch.

Authors:  Jialie Luo; Jing Feng; Shenbin Liu; Edgar T Walters; Hongzhen Hu
Journal:  Cell Mol Life Sci       Date:  2015-09       Impact factor: 9.261

5.  Electromagnetic-guided dynamic multileaf collimator tracking enables motion management for intensity-modulated arc therapy.

Authors:  Paul J Keall; Amit Sawant; Byungchul Cho; Dan Ruan; Junqing Wu; Per Poulsen; Jay Petersen; Laurence J Newell; Herbert Cattell; Stine Korreman
Journal:  Int J Radiat Oncol Biol Phys       Date:  2010-07-07       Impact factor: 7.038

6.  Surface dose in the treatment of breast cancer with helical tomotherapy.

Authors:  Felix Zibold; Florian Sterzing; Gabriele Sroka-Perez; Kai Schubert; Katja Wagenknecht; Gerald Major; Jürgen Debus; Klaus Herfarth
Journal:  Strahlenther Onkol       Date:  2009-09-12       Impact factor: 3.621

7.  Outcome and toxicity of stereotactic body radiotherapy with helical tomotherapy for inoperable lung tumor: analysis of Grade 5 radiation pneumonitis.

Authors:  Norihiro Aibe; Hideya Yamazaki; Satoaki Nakamura; Takuji Tsubokura; Kana Kobayashi; Naohiro Kodani; Takuya Nishimura; Haruumi Okabe; Kei Yamada
Journal:  J Radiat Res       Date:  2014-01-23       Impact factor: 2.724

8.  Intensity-modulated radiation therapy using static ports of tomotherapy (TomoDirect): comparison with the TomoHelical mode.

Authors:  Taro Murai; Yuta Shibamoto; Yoshihiko Manabe; Rumi Murata; Chikao Sugie; Akihiro Hayashi; Hiroya Ito; Yoshihito Miyoshi
Journal:  Radiat Oncol       Date:  2013-03-21       Impact factor: 3.481

9.  Investigation of probabilistic optimization for tomotherapy.

Authors:  Michael W Kissick; Thomas R Mackie; Ryan T Flynn; Xiaohu Mo; David D Campos; Yue Yan; Donghui Zhao
Journal:  J Appl Clin Med Phys       Date:  2012-09-06       Impact factor: 2.102

10.  Safety and efficacy of intensity-modulated stereotactic body radiotherapy using helical tomotherapy for lung cancer and lung metastasis.

Authors:  Aiko Nagai; Yuta Shibamoto; Masanori Yoshida; Koji Inoda; Yuzo Kikuchi
Journal:  Biomed Res Int       Date:  2014-06-04       Impact factor: 3.411

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