Impact of respiratory motion on proton pencil beam scanning FLASH radiotherapy: An in silico and phantom measurement study Journal Article


Authors: Yang, Y.; Kang, M.; Huang, S.; Chen, C. C.; Tsai, P.; Hu, L.; Yu, F.; Hajj, C.; Choi, J. I.; Tome, W. A.; Simone, C. B. 2nd; Lin, H.
Article Title: Impact of respiratory motion on proton pencil beam scanning FLASH radiotherapy: An in silico and phantom measurement study
Abstract: Objective. To investigate the effects of respiratory motion on the delivered dose in the context of proton pencil beam scanning (PBS) transmission FLASH radiotherapy (FLASH-RT) by simulation and phantom measurements. Approach. An in-house simulation code was employed to perform in silico simulation of 2D dose distributions for clinically relevant proton PBS transmission FLASH-RT treatments. A moving simulation grid was introduced to investigate the impacts of various respiratory motion and treatment delivery parameters on the dynamic PBS dose delivery. A strip-ionization chamber array detector and an IROC motion platform were employed to perform phantom measurements of the 2D dose distribution for treatment fields similar to those used for simulation. Main results. Clinically relevant respiratory motion and treatment delivery parameters resulted in degradation of the delivered dose compared to the static delivery as translation and distortion. Simulation showed that the gamma passing rates (2 mm/2% criterion) and target coverage could drop below 50% and 80%, respectively, for certain scenarios if no mitigation strategy was used. The gamma passing rates and target coverage could be restored to more than 95% and 98%, respectively, for short beams delivered at the maximal inhalation or exhalation phase. The simulation results were qualitatively confirmed in phantom measurements with the motion platform. Significance. Respiratory motion could cause dose quality degradation in a clinically relevant proton PBS transmission FLASH-RT treatment if no mitigation strategy is employed, or if an adequate margin is not given to the target. Besides breath-hold, gated delivery can be an alternative motion management strategy to ensure high consistency of the delivered dose while maintaining minimal dose to the surrounding normal tissues. To the best of our knowledge, this is the first study on motion impacts in the context of proton transmission FLASH radiotherapy. © 2023 Institute of Physics and Engineering in Medicine.
Keywords: radiotherapy dosage; radiotherapy; computer simulation; protons; radiotherapy planning, computer-assisted; phantoms, imaging; respiratory motions; respiratory mechanics; proton; phantoms; dose distributions; proton therapy; procedures; phantom measurements; motion management; imaging phantom; radiotherapy planning system; proton beams; proton beam therapy; pencil beam scanning; flash radiotherapy; in-silico; pencil beam; beam-scanning; pencil beam scanning (pbs); simulation platform
Journal Title: Physics in Medicine and Biology
Volume: 68
Issue: 8
ISSN: 0031-9155
Publisher: IOP Publishing Ltd  
Date Published: 2023-04-21
Start Page: 085008
Language: English
DOI: 10.1088/1361-6560/acc632
PUBMED: 36944258
PROVIDER: scopus
DOI/URL:
Notes: Article -- Export Date: 1 May 2023 -- Source: Scopus
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MSK Authors
  1. Carla Hajj
    165 Hajj
  2. Charles Brian Simone
    194 Simone
  3. Jehee Isabelle Choi
    71 Choi
  4. Haibo Lin
    21 Lin
  5. Yunjie Yang
    10 Yang