Literature DB >> 33599391

Investigating volumetric repainting to mitigate interplay effect on 4D robustly optimized lung cancer plans in pencil beam scanning proton therapy.

Suresh Rana1,2,3,4, Anatoly B Rosenfeld4.   

Abstract

PURPOSE: The interplay effect between dynamic pencil proton beams and motion of the lung tumor presents a challenge in treating lung cancer patients in pencil beam scanning (PBS) proton therapy. The main purpose of the current study was to investigate the interplay effect on the volumetric repainting lung plans with beam delivery in alternating order ("down" and "up" directions), and explore the number of volumetric repaintings needed to achieve acceptable lung cancer PBS proton plan.
METHOD: The current retrospective study included ten lung cancer patients. The total dose prescription to the clinical target volume (CTV) was 70 Gy(RBE) with a fractional dose of 2 Gy(RBE). All treatment plans were robustly optimized on all ten phases in the 4DCT data set. The Monte Carlo algorithm was used for the 4D robust optimization, as well as for the final dose calculation. The interplay effect was evaluated for both the nominal (i.e., without repainting) as well as volumetric repainting plans. The interplay evaluation was carried out for each of the ten different phases as the starting phases. Several dosimetric metrics were included to evaluate the worst-case scenario (WCS) and bandwidth based on the results obtained from treatment delivery starting in ten different breathing phases.
RESULTS: The number of repaintings needed to meet the criteria 1 (CR1) of target coverage (D95%  ≥ 98% and D99%  ≥ 97%) ranged from 2 to 10. The number of repaintings needed to meet the CR1 of maximum dose (ΔD1%  < 1.5%) ranged from 2 to 7. Similarly, the number of repaintings needed to meet CR1 of homogeneity index (ΔHI < 0.03) ranged from 3 to 10. For the target coverage region, the number of repaintings needed to meet CR1 of bandwidth (<100 cGy) ranged from 3 to 10, whereas for the high-dose region, the number of repaintings needed to meet CR1 of bandwidth (<100 cGy) ranged from 1 to 7. Based on the overall plan evaluation criteria proposed in the current study, acceptable plans were achieved for nine patients, whereas one patient had acceptable plan with a minor deviation.
CONCLUSION: The number of repaintings required to mitigate the interplay effect in PBS lung cancer (tumor motion < 15 mm) was found to be highly patient dependent. For the volumetric repainting with an alternating order, a patient-specific interplay evaluation strategy must be adopted. Determining the optimal number of repaintings based on the bandwidth and WCS approach could mitigate the interplay effect in PBS lung cancer treatment.
© 2021 The Authors. Journal of Applied Clinical Medical Physics published by Wiley Periodicals, Inc. on behalf of American Association of Physicists in Medicine.

Entities:  

Keywords:  4D robust optimization; Monte Carlo; interplay effect; lung cancer; pencil beam scanning

Mesh:

Year:  2021        PMID: 33599391      PMCID: PMC7984493          DOI: 10.1002/acm2.13183

Source DB:  PubMed          Journal:  J Appl Clin Med Phys        ISSN: 1526-9914            Impact factor:   2.102


  32 in total

1.  A study on repainting strategies for treating moderately moving targets with proton pencil beam scanning at the new Gantry 2 at PSI.

Authors:  S M Zenklusen; E Pedroni; D Meer
Journal:  Phys Med Biol       Date:  2010-08-11       Impact factor: 3.609

Review 2.  Motion in radiotherapy: particle therapy.

Authors:  C Bert; M Durante
Journal:  Phys Med Biol       Date:  2011-07-20       Impact factor: 3.609

3.  Motion mitigation for lung cancer patients treated with active scanning proton therapy.

Authors:  Clemens Grassberger; Stephen Dowdell; Greg Sharp; Harald Paganetti
Journal:  Med Phys       Date:  2015-05       Impact factor: 4.071

4.  Efficient Interplay Effect Mitigation for Proton Pencil Beam Scanning by Spot-Adapted Layered Repainting Evenly Spread out Over the Full Breathing Cycle.

Authors:  Per Rugaard Poulsen; John Eley; Ulrich Langner; Charles B Simone; Katja Langen
Journal:  Int J Radiat Oncol Biol Phys       Date:  2017-10-04       Impact factor: 7.038

Review 5.  Consensus Guidelines for Implementing Pencil-Beam Scanning Proton Therapy for Thoracic Malignancies on Behalf of the PTCOG Thoracic and Lymphoma Subcommittee.

Authors:  Joe Y Chang; Xiaodong Zhang; Antje Knopf; Heng Li; Shinichiro Mori; Lei Dong; Hsiao-Ming Lu; Wei Liu; Shahed N Badiyan; Stephen Both; Arturs Meijers; Liyong Lin; Stella Flampouri; Zuofeng Li; Kikuo Umegaki; Charles B Simone; Xiaorong R Zhu
Journal:  Int J Radiat Oncol Biol Phys       Date:  2017-05-19       Impact factor: 7.038

6.  Quantification of interplay effects of scanned particle beams and moving targets.

Authors:  Christoph Bert; Sven O Grözinger; Eike Rietzel
Journal:  Phys Med Biol       Date:  2008-04-09       Impact factor: 3.609

7.  4D strategies for lung tumors treated with hypofractionated scanning proton beam therapy: Dosimetric impact and robustness to interplay effects.

Authors:  Edoardo Mastella; Silvia Molinelli; Andrea Pella; Alessandro Vai; Davide Maestri; Viviana Vitolo; Guido Baroni; Francesca Valvo; Mario Ciocca
Journal:  Radiother Oncol       Date:  2020-03-26       Impact factor: 6.280

8.  Investigating the utilization of beam-specific apertures for the intensity-modulated proton therapy (IMPT) head and neck cancer plans.

Authors:  Suresh Rana; Mark Storey; Noufal Manthala Padannayil; Dayananda Sharma Shamurailatpam; Jaafar Bennouna; Jerry George; John Chang
Journal:  Med Dosim       Date:  2020-11-24       Impact factor: 1.482

9.  Development and long-term stability of a comprehensive daily QA program for a modern pencil beam scanning (PBS) proton therapy delivery system.

Authors:  Suresh Rana; Jaafar Bennouna; E James Jebaseelan Samuel; Alonso N Gutierrez
Journal:  J Appl Clin Med Phys       Date:  2019-03-28       Impact factor: 2.102

10.  Correlation of clinical outcome, radiobiological modeling of tumor control, normal tissue complication probability in lung cancer patients treated with SBRT using Monte Carlo calculation algorithm.

Authors:  Sumit S Sood; Damodar Pokhrel; Rajeev Badkul; Mindi TenNapel; Christopher McClinton; Bruce Kimler; Fen Wang
Journal:  J Appl Clin Med Phys       Date:  2020-08-14       Impact factor: 2.102

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  2 in total

1.  Impact of errors in spot size and spot position in robustly optimized pencil beam scanning proton-based stereotactic body radiation therapy (SBRT) lung plans.

Authors:  Suresh Rana; Anatoly B Rosenfeld
Journal:  J Appl Clin Med Phys       Date:  2021-06-07       Impact factor: 2.102

2.  Small spot size versus large spot size: Effect on plan quality for lung cancer in pencil beam scanning proton therapy.

Authors:  Suresh Rana; Anatoly B Rosenfeld
Journal:  J Appl Clin Med Phys       Date:  2022-01-06       Impact factor: 2.102

  2 in total

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