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March 22, 2026PLoS ONE0 citationsOpen Access

A computational method to estimate the relative biological effectiveness and tumor control probability for low-LET proton irradiations

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CCChun-Chieh ChanNational Formosa UniversityKHKuang-Lung HsuehWuXi AppTec (China)CLChung-Yu LaiHungkuang University

Key Points

  • The study aims to develop a computational method to assess relative biological effectiveness and tumor control probability for proton irradiations and varying oxygen environments.
  • Utilized linear quadratic and repair-misrepair-fixation models for calculations.
  • Analyzed the impact of oxygen concentration on tumor control probability.
  • Calculated TCP across varying oxygen levels and proton energies.
  • TCP increased from 61% to 98% under aerobic conditions (21% O2).
  • TCP ranged from 45% to 98% under moderately hypoxic conditions (2% O2).
  • Under severely hypoxic conditions (0.1% O2), TCP increased from 1% to 48%.
  • Findings align with clinical trial data showing hypoxia's impact on TCP for low-LET radiations.

Abstract

A constant relative biological effectiveness (RBE) value of 1.1 is used for proton therapy (PT) in many clinical treatment plans. However, several studies show that RBE varies with proton energy, linear energy transfer (LET), and oxygen concentration. This study presents a computational method based on the linear quadratic (LQ) and repair-misrepair-fixation (RMF) models to calculate tumor control probability (TCP) under varying oxygen conditions. We analyze the impact of hypoxia on the parameters of the LQ model, focusing on the ratio and RBE. The proposed method allows for TCP calculations across different oxygen concentrations and for various ion therapies, such as proton and carbon ion therapy. Our results show that increasing the LET from 1 to 12 keV/μm enhances TCP from 61% to 98% under aerobic conditions (21% O 2 ), 45% to 98% under moderately hypoxic conditions (2% O 2 ), and from 1% to 48% under severely hypoxic conditions (0.1% O 2 ). These findings are compared with clinical trial data, demonstrating that hypoxia significantly affects TCP for low-LET radiations.

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Cite This Study

Chan et al. (2026) studied this question.

synapsesocial.com/papers/69bf89a9f665edcd009e97cehttps://doi.org/10.1371/journal.pone.0341352
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