PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
March 12, 2026Biomedical Physics & Engineering Express0 citationsOpen Access

Convex Hull-Based Microdosimetry in Geant4-DNA: Linking Electron Track Structures to Radiobiological Effectiveness

View Full Paper
FMFatemeh MoujiLRLadan RezaeeHKHadi Khajehazad

Key Points

  • To develop and implement a Convex Hull-based microdosimetry technique in Geant4-DNA that relates electron track structures to radiobiological effectiveness.
  • Incorporated a new microdosimetric technique in Geant4-DNA
  • Simulated track structures in liquid water using monoenergetic electrons from 0.1 keV to 1000 keV
  • Utilized the Jarvis-March gift wrapping algorithm for computational efficiency
  • Employed dose mean lineal energy and frequency mean lineal energy to estimate radiobiological parameters
  • Compared findings with KURBUC and FLUKA codes
  • The Convex Hull approach predicts microdosimetric quantities with 5% accuracy at the micrometer scale
  • Observed systematic differences at the nanometer scale due to varying track volume definitions
  • The α parameter rose with incident particle energy, affecting RBE and ionization clustering
  • RBE for clinical beams remained close to 0.85, showing minimal energy dependency
  • Differences of 7-12% were noted when comparing with reference results

Abstract

A new Convex Hull microdosimetric technique has been incorporated in Geant4-DNA to enhance geometrical modeling of microdosimetry at nanometric scales. This new microdosimetric technique aims to provide a direct relationship between electron track structures and their effectiveness in radiobiology. Track structures in liquid water were simulated using monoenergetic electrons ranging from 0.1 keV to 1000 keV, including clinical electron beams between 6 MeV and 18 MeV. The CH technique, based on the Jarvis-March gift wrapping algorithm, has been incorporated in Geant4-DNA to increase computational efficiency by geometrically encapsulating track-associated microdosimetric quantities. Dose mean lineal energy and frequency mean lineal energy were used in conjunction with the Microdosimetric Kinetic Model to estimate radiobiological parameters and relative biological effectiveness. These results are compared with the reference results obtained using the KURBUC and FLUKA codes. The CH approach correctly predicts the reference microdosimetric quantities within 5% accuracy for the micrometer scale, while larger systematic differences are found on the nanometer scale due to the different definitions of the track volume. The α parameter increases with increasing incident particle energy, ranging from 0.094 Gy⁻¹ for an incident particle energy of 0.1 keV to 0.265 Gy⁻¹ for an incident particle energy of 5 keV, which results in an RBE of approximately 1.04, showing the effect of ionization clustering. A comparison of the results with the reference results reveals differences of 7-12%. The RBE results for clinical electron beams are found to be nearly independent of the incident particle energy and remain close to 0.85 when normalized to the results obtained for X-rays. The CH-based approach provides an efficient computational scheme for the calculation of the micro- and nanodosimetric quantities, which allows the model-based calculation of the RBE and the quantification of the quality of the radiation on the nanometric scale.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Mouji et al. (2026) studied this question.

synapsesocial.com/papers/69b25b5496eeacc4fcec9f3chttps://doi.org/10.1088/2057-1976/ae4eef
Ask AI
Helpful
Bookmark
Share
View Full Paper