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28 November 2023 A Novel Platform for Evaluating Dose Rate Effects on Oxidative Damage to Peptides: Toward a High-Throughput Method to Characterize the Mechanisms Underlying the FLASH Effect
Sayan Gupta, Jamie L. Inman, Jared De Chant, Lieselotte Obst-Huebl, Kei Nakamura, Shawn M. Costello, Susan Marqusee, Jian-Hua Mao, Louis Kunz, Ryan Paisley, Marie-Catherine Vozenin, Antoine M. Snijders, Corie Y. Ralston
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Abstract

High dose rate radiation has gained considerable interest recently as a possible avenue for increasing the therapeutic window in cancer radiation treatment. The sparing of healthy tissue at high dose rates relative to conventional dose rates, while maintaining tumor control, has been termed the FLASH effect. Although the effect has been validated in animal models using multiple radiation sources, it is not yet well understood. Here, we demonstrate a new experimental platform for quantifying oxidative damage to protein sidechains in solution as a function of radiation dose rate and oxygen availability using liquid chromatography mass spectrometry. Using this reductionist approach, we show that for both X-ray and electron sources, isolated peptides in solution are oxidatively modified to different extents as a function of both dose rate and oxygen availability. Our method provides an experimental platform for exploring the parameter space of the dose rate effect on oxidative changes to proteins in solution.

Sayan Gupta, Jamie L. Inman, Jared De Chant, Lieselotte Obst-Huebl, Kei Nakamura, Shawn M. Costello, Susan Marqusee, Jian-Hua Mao, Louis Kunz, Ryan Paisley, Marie-Catherine Vozenin, Antoine M. Snijders, and Corie Y. Ralston "A Novel Platform for Evaluating Dose Rate Effects on Oxidative Damage to Peptides: Toward a High-Throughput Method to Characterize the Mechanisms Underlying the FLASH Effect," Radiation Research 200(6), 523-530, (28 November 2023). https://doi.org/10.1667/RADE-23-00131.1
Received: 6 July 2023; Accepted: 5 October 2023; Published: 28 November 2023
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