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A mechanism-guided approach for quantifying the biological effects of tumor hypoxia in particle therapy.

Created on 11 Sep 2026

Authors

Fada Guan, Robert D Stewart, David J Carlson

Published in

International journal of radiation oncology, biology, physics. Sep 10, 2026. Epub Sep 10, 2026.

Abstract

To quantify how acute tumor hypoxia modifies the biological effectiveness of proton, helium, and carbon ions and to derive mechanistic hypoxia-compensation factors for representative spread-out Bragg peaks (SOBPs).
The Monte Carlo Damage Simulation (MCDS) was used to generate DNA double-strand break (DSB) yields as functions of radiation quality q = (Zeff/β)2 and oxygen level pO2 (0.0001-100%). MCDS-derived DSB yields were integrated into Geant4 Monte Carlo simulations, and Repair-Misrepair-Fixation (RMF) model calculations were used to derive linear-quadratic radiosensitivity parameters. We distinguish hypoxic RBE (RBEH), which compares the biological effects of particles at reduced pO2 with photons under normoxic conditions (137Cs γ-rays at pO2 = 100%), from isoeffective RBE (RBEiso), which compares particles and photons at the same pO2. SOBP (10-15 cm depth) optimizations used either a uniform 2 Gy absorbed dose or a uniform RBEH-weighted dose (DRBE = 3.8 Gy) corresponding to 10% clonogenic survival in H460 cells; hypoxia reduction factors (HRFs) quantified the absorbed-dose compensation required to preserve this modeled endpoint.
At pO2 = 21%, at DRBE = 3.8 Gy, RBEH was 1.04-1.16 for protons, 1.23-1.67 for helium ions, and 1.84-3.55 for carbon ions. At pO2 = 0.001%, RBEH decreased to 0.39-0.41, 0.50-0.70, and 0.87-2.28, respectively. Because RBEH uses the fixed photon reference at pO2 = 100%, values below unity quantify the combined oxygen and radiation-quality penalty and do not indicate that particles are less effective than photons irradiating the same hypoxic tissue. At pO2 = 0.001%, RBEiso remained >1 (protons 1.13-1.19; helium 1.46-2.03; carbon 2.54-6.63). The corresponding HRFs were 2.73-2.89, 2.42-2.53, and 1.57-2.07.
Within the H460 single-fraction clonogenic-survival framework examined here, high-LET carbon ions are less sensitive to severe hypoxia than helium ions or protons and require smaller model-derived hypoxia-compensation factors.

PMID:
42722204
Bibliographic data and abstract were imported from PubMed on 11 Sep 2026.

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