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Validation of the generalized stochastic microdosimetric model (GSM 2 ) over a broad range of LET and particle beam type: a unique model for accurate description of (therapy relevant) radiation qualities

  • Giulio Bordieri
  • , Marta Missiaggia
  • , Giorgio Cartechini
  • , Marco Battestini
  • , Lawrence Bronk
  • , Fada Guan
  • , David Grosshans
  • , Priyamvada Rai
  • , Emanuele Scifoni
  • , Chiara La Tessa
  • , Gianluca Lattanzi
  • , Francesco G. Cordoni

Research output: Contribution to journalArticlepeer-review

Abstract

Objective. The present work shows the first extensive validation of the generalized stochastic microdosimetric model (GSM2). This mechanistic and probabilistic model is trained and tested over cell survival experiments conducted with two cell lines (H460 and H1437), three different types of radiation (protons, helium, and carbon ions), spanning a very broad LET range from 1 keV μ m − 1 up to more than 300 keV μ m − 1 . Currently, the existing mechanistic radiation biophysical models show some limitations in describing cell killing without the addition of ad hoc corrections, especially in the high-LET regime, where the overkill effect is observed. Approach. The experimental irradiation conditions have been accurately reproduced with Monte Carlo simulations using the GEANT4-based TOPAS computational toolkit. We show the main and unique features of GSM 2 , i.e. how it can predict the biological response by considering the full information on the stochasticity of radiation through the microdosimetric spectrum, which is supposed to be the best descriptor of radiation quality. Main results. Well-matching results for different biological endpoints with the natural presence of the overkill effect fully display the predictive power of GSM2. Significance. This study shows the complete generality and flexibility of GSM2 and its ability to successfully predict the cell survival probability from very different particle radiation fields. Consequently, we demonstrate the dependence of the relative biological effectiveness on the whole microdosimetric spectrum, which fully includes the stochasticity inherently given by radiation-matter interaction.

Original languageEnglish (US)
Article number015005
JournalPhysics in medicine and biology
Volume70
Issue number1
DOIs
StatePublished - Jan 5 2025

Keywords

  • generalized
  • GSM2
  • microdosimetric
  • microdosimetry
  • model
  • radiation
  • stochastic

ASJC Scopus subject areas

  • Radiological and Ultrasound Technology
  • Radiology Nuclear Medicine and imaging

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