Biological optimization for mediastinal lymphoma radiotherapy – a preliminary study

Authors

  • Laura Ann Rechner Department of Oncology, Section of Radiotherapy, Rigshospitalet, University of Copenhagen, Copenhagen, Denmark;  Niels Bohr Institute, Faculty of Science, University of Copenhagen, Copenhagen, Denmark;
  • Arezoo Modiri Department of Radiation Oncology, University of Maryland School of Medicine, Baltimore, MD, USA
  • Line Bjerregaard Stick Department of Oncology, Section of Radiotherapy, Rigshospitalet, University of Copenhagen, Copenhagen, Denmark; Niels Bohr Institute, Faculty of Science, University of Copenhagen, Copenhagen, Denmark
  • Maja V. Maraldo Department of Oncology, Section of Radiotherapy, Rigshospitalet, University of Copenhagen, Copenhagen, Denmark
  • Marianne C. Aznar Manchester Cancer Research Centre, Division of Cancer Sciences, The University of Manchester, Manchester, UK;  Clinical Trial Service Unit, Nuffield Department of Population Health, University of Oxford, UK
  • Stephanie R. Rice University of Maryland Medical Center, Baltimore, MD, USA
  • Amit Sawant Department of Radiation Oncology, University of Maryland School of Medicine, Baltimore, MD, USA
  • Søren M. Bentzen Greenebaum Comprehensive Cancer Center, Department of Epidemiology and Public Health, University of Maryland School of Medicine, Baltimore, MD, USA
  • Ivan Richter Vogelius Department of Oncology, Section of Radiotherapy, Rigshospitalet, University of Copenhagen, Copenhagen, Denmark
  • Lena Specht Department of Oncology, Section of Radiotherapy, Rigshospitalet, University of Copenhagen, Copenhagen, Denmark

DOI:

https://doi.org/10.1080/0284186X.2020.1733654

Abstract

Purpose: In current radiotherapy (RT) planning and delivery, population-based dose-volume constraints are used to limit the risk of toxicity from incidental irradiation of organs at risks (OARs). However, weighing tradeoffs between target coverage and doses to OARs (or prioritizing different OARs) in a quantitative way for each patient is challenging. We introduce a novel RT planning approach for patients with mediastinal Hodgkin lymphoma (HL) that aims to maximize overall outcome for each patient by optimizing on tumor control and mortality from late effects simultaneously.

Material and Methods: We retrospectively analyzed 34 HL patients treated with conformal RT (3DCRT). We used published data to model recurrence and radiation-induced mortality from coronary heart disease and secondary lung and breast cancers. Patient-specific doses to the heart, lung, breast, and target were incorporated in the models as well as age, sex, and cardiac risk factors (CRFs). A preliminary plan of candidate beams was created for each patient in a commercial treatment planning system. From these candidate beams, outcome-optimized (O-OPT) plans for each patient were created with an in-house optimization code that minimized the individual risk of recurrence and mortality from late effects. O-OPT plans were compared to VMAT plans and clinical 3DCRT plans.

Results: O-OPT plans generally had the lowest risk, followed by the clinical 3DCRT plans, then the VMAT plans with the highest risk with median (maximum) total risk values of 4.9 (11.1), 5.1 (17.7), and 7.6 (20.3)%, respectively (no CRFs). Compared to clinical 3DCRT plans, O-OPT planning reduced the total risk by at least 1% for 9/34 cases assuming no CRFs and 11/34 cases assuming presence of CRFs.

Conclusions: We developed an individualized, outcome-optimized planning technique for HL. Some of the resulting plans were substantially different from clinical plans. The results varied depending on how risk models were defined or prioritized.

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Published

2020-08-02

How to Cite

Ann Rechner, L., Modiri, A., Bjerregaard Stick, L., Maraldo, M. V., Aznar, M. C., Rice, S. R., … Specht, L. (2020). Biological optimization for mediastinal lymphoma radiotherapy – a preliminary study. Acta Oncologica, 59(8), 879–887. https://doi.org/10.1080/0284186X.2020.1733654