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Design, fabrication, and validation of patient-specific electron tissue compensators for postmastectomy radiation therapy.
Craft, Daniel F; Balter, Peter; Woodward, Wendy; Kry, Stephen F; Salehpour, Mohammad; Ger, Rachel; Peters, Mary; Baltz, Garrett; Traneus, Erik; Howell, Rebecca M.
Affiliation
  • Craft DF; Department of Radiation Physics, The University of Texas MD Anderson Cancer Center, Houston, TX 77030, USA.
  • Balter P; The University of Texas Graduate School of Biomedical Sciences at Houston, Houston, TX 77030, USA.
  • Woodward W; Department of Radiation Physics, The University of Texas MD Anderson Cancer Center, Houston, TX 77030, USA.
  • Kry SF; The University of Texas Graduate School of Biomedical Sciences at Houston, Houston, TX 77030, USA.
  • Salehpour M; The University of Texas Graduate School of Biomedical Sciences at Houston, Houston, TX 77030, USA.
  • Ger R; Department of Radiation Oncology, The University of Texas MD Anderson Cancer Center, Houston, TX 77030, USA.
  • Peters M; Department of Radiation Physics, The University of Texas MD Anderson Cancer Center, Houston, TX 77030, USA.
  • Baltz G; The University of Texas Graduate School of Biomedical Sciences at Houston, Houston, TX 77030, USA.
  • Traneus E; Department of Radiation Physics, The University of Texas MD Anderson Cancer Center, Houston, TX 77030, USA.
  • Howell RM; The University of Texas Graduate School of Biomedical Sciences at Houston, Houston, TX 77030, USA.
Phys Imaging Radiat Oncol ; 8: 38-43, 2018 Oct.
Article in En | MEDLINE | ID: mdl-33458415
BACKGROUND AND PURPOSE: Postmastectomy radiotherapy (PMRT) is complex to plan and deliver, but could be improved with 3D-printed, patient-specific electron tissue compensators. The purposes of this study were to develop an algorithm to design patient-specific compensators that achieve clinical goals, to 3D-print the planned compensators, and validate calculated dose distributions with film and thermoluminescent dosimeter (TLD) measurements in 3D-printed phantoms of PMRT patients. MATERIALS AND METHODS: An iterative algorithm was developed to design compensators corresponding to single-field, single-energy electron plans for PMRT patients. The 3D-printable compensators were designed to fit into the electron aperture, with cerrobend poured around it. For a sample of eight patients, calculated dose distributions for compensator plans were compared with patients' (multi-field, multi-energy) clinical treatment plans. For all patients, dosimetric parameters were compared including clinical target volume (CTV), lung, and heart metrics. For validation, compensators were fabricated and irradiated for a set of six 3D-printed patient-specific phantoms. Dose distributions in the phantoms were measured with TLD and film. These measurements were compared with the treatment planning system calculated dose distributions. RESULTS: The compensator treatment plans achieved superior CTV coverage (97% vs 89% of the CTV receiving the prescription dose, p < 0.0025), and similar heart and lung doses (p > 0.35) to the conventional treatment plans. Average differences between calculated and measured TLD values were 2%, and average film profile differences were <2 mm. CONCLUSIONS: We developed a new compensator based treatment methodology for PMRT and demonstrated its validity and superiority to conventional multi-field plans through end-to-end testing.
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Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Phys Imaging Radiat Oncol Year: 2018 Document type: Article Affiliation country: United States Country of publication: Netherlands

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Phys Imaging Radiat Oncol Year: 2018 Document type: Article Affiliation country: United States Country of publication: Netherlands