Modeling the impact of tissue oxygen profiles and oxygen depletion parameter uncertainties on biological response and therapeutic benefit of FLASH
Hongyu Zhu, Jan Schuemann, Qixian Zhang, Leo E Gerweck

TL;DR
This study models how tissue oxygen profiles and oxygen depletion uncertainties influence the biological effects and therapeutic outcomes of FLASH radiotherapy, highlighting the importance of oxygen dynamics in tissue sparing and tumor control.
Contribution
It introduces a comprehensive model linking oxygen depletion parameters with radiobiological responses during FLASH irradiation, considering tissue-specific pO2 profiles and their uncertainties.
Findings
pO2 profile critically influences biological response
Small fractions of hypoxic cells significantly alter outcomes
Higher k values tend to protect tumors more than normal tissue
Abstract
FLASH radiation has been reported to efficiently suppress tumor growth while sparing normal tissue, however, the mechanism of the differential tissue sparing effect is still not known. Oxygen has long been known to profoundly impact radiobiological responses, and radiolytic oxygen depletion has been considered to be a possible cause or contributor to the FLASH phenomenon. This work investigates the impact of tissue pO2 profiles, oxygen depletion per unit dose (g), and the oxygen concentration yielding half-maximal radiosensitization (k) in tumor and normal tissue. We developed a model that considers the dependent relationship between oxygen depletion and change of radiosensitivity during FLASH irradiation. Cell survival was calculated based on the LQ-L model and the radiosensitivity related parameters were adjusted while delivering fractional doses of FLASH irradiation The model…
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Taxonomy
TopicsCancer, Hypoxia, and Metabolism · Medical Imaging Techniques and Applications · Radiation Therapy and Dosimetry
