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1.
Phys Med ; 77: 138-145, 2020 Sep.
Article in English | MEDLINE | ID: mdl-32829102

ABSTRACT

PURPOSE: Megavoltage radiotherapy to irregular superficial targets is challenging due to the skin sparing effect. We developed a three-dimensional bolus (3DB) program to assess the clinical impact on dosimetric and patient outcomes. MATERIALS AND METHODS: Planar commercial bolus (PCB) and 3DB density, clarity, and net bolus effect were rigorously evaluated prior to clinical implementation. After IRB approval, patients with cutaneous or locally advanced malignancies deemed to require bolus for radiotherapy treatment were treated with custom 3DB. RESULTS: The mean density of 3DB and PCB was of 1.07 g/cm 3 and 1.12 g/cm3, respectively. 3DB optic clarity was superior versus PCB at any material thickness. Phantom measurements of superficial dose with 3DB and PCB showed excellent bolus effect for both materials. 3DB reduced air gaps compared with PCB - particularly in irregular areas such as the ear, nose, and orbit. A dosimetric comparison of 3DB and PCB plans showed equivalent superficial homogeneity for 3DB and PCB (3DB median HI 1.249, range 1.111-1.300 and PCB median HI 1.165, range 1.094-1.279), but better conformity with 3DB (3DB median CI 0.993, range 0.962-0.993) versus PCB (PCB median CI 0.977, range 0.601-0.991). Patient dose measurements using 3DB confirm the delivered superficial dose was within 1% of the intended prescription (95% CI 97-102%; P = 0.11). CONCLUSIONS: 3DB improves radiotherapy plan conformity, reduces air gap volume in irregular superficial areas which could affect superficial dose delivery, and provides excellent dose coverage to irregular superficial targets.


Subject(s)
Head and Neck Neoplasms , Radiotherapy, Intensity-Modulated , Head and Neck Neoplasms/radiotherapy , Humans , Phantoms, Imaging , Printing, Three-Dimensional , Radiotherapy Dosage , Radiotherapy Planning, Computer-Assisted
2.
Phys Med Biol ; 60(24): 9215-25, 2015 Dec 21.
Article in English | MEDLINE | ID: mdl-26576743

ABSTRACT

Tumor acute hypoxia has a dynamic component that is also, at least partially, coherent. Using blood oxygen level dependent magnetic resonance imaging, we observed coherent oscillations in hemoglobin saturation dynamics in cell line xenograft models of head and neck squamous cell carcinoma. We posit a well-established biochemical nonlinear oscillatory mechanism called the glycolytic oscillator as a potential cause of the coherent oscillations in tumors. These data suggest that metabolic changes within individual tumor cells may affect the local tumor microenvironment including oxygen availability and therefore radiosensitivity. These individual cells can synchronize the oscillations in patches of similar intermediate glucose levels. These alterations have potentially important implications for radiation therapy and are a potential target for optimizing the cancer response to radiation.


Subject(s)
Carcinoma, Squamous Cell/pathology , Glucose/metabolism , Head and Neck Neoplasms/pathology , Hypoxia/pathology , Magnetic Resonance Imaging/methods , Oxygen/metabolism , Tumor Microenvironment , Acute Disease , Animals , Carcinoma, Squamous Cell/metabolism , Head and Neck Neoplasms/metabolism , Hemoglobins/metabolism , Humans , Hypoxia/metabolism , Image Processing, Computer-Assisted , Mice , Mice, Inbred NOD , Mice, SCID , Radiation Tolerance , Tumor Cells, Cultured , Xenograft Model Antitumor Assays
3.
J Appl Clin Med Phys ; 13(5): 3865, 2012 Sep 06.
Article in English | MEDLINE | ID: mdl-22955654

ABSTRACT

This work builds on a suite of studies related to the 'interplay', or lack thereof, for respiratory motion with helical tomotherapy (HT). It helps explain why HT treatments without active motion management had clinical outcomes that matched positive expectations. An analytical calculation is performed to illuminate the frequency range for which interplay-type dose errors could occur. Then, an experiment is performed which completes a suite of tests. The experiment shows the potential for a stable motion probability distribution function (PDF) with HT and respiratory motion. This PDF enables one to use a motion-robust or probabilistic optimization to intrinsically include respiratory motion into the treatment planning. The reason why HT is robust to respiratory motion is related to the beam modulation sampling of the tumor motion. Because active tracking-based motion management is more complicated for a variety of reasons, HT optimization that is robust to motion is a useful alternative for those many patients that cannot benefit from active motion management.


Subject(s)
Lung Neoplasms/radiotherapy , Movement , Phantoms, Imaging , Radiometry/methods , Radiotherapy Planning, Computer-Assisted , Respiratory Mechanics , Humans , Lung Neoplasms/diagnostic imaging , Lung Neoplasms/physiopathology , Models, Statistical , Probability , Radiography
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