Literature DB >> 22668077

Microdosimetry of low-energy electrons.

Thiansin Liamsuwan1, Dimitris Emfietzoglou, Shuzo Uehara, Hooshang Nikjoo.   

Abstract

PURPOSE: To investigate differences in energy depositions and microdosimetric parameters of low-energy electrons in liquid and gaseous water using Monte Carlo track structure simulations.
MATERIALS AND METHODS: KURBUC-liq (Kyushu University and Radiobiology Unit Code for liquid water) was used for simulating electron tracks in liquid water. The inelastic scattering cross sections of liquid water were obtained from the dielectric response model of Emfietzoglou et al. (Radiation Research 2005;164:202-211). Frequencies of energy deposited in nanometre-size cylindrical targets per unit absorbed dose and associated lineal energies were calculated for 100-5000 eV monoenergetic electrons and the electron spectrum of carbon K edge X-rays. The results for liquid water were compared with those for water vapour.
RESULTS: Regardless of electron energy, there is a limit how much energy electron tracks can deposit in a target. Phase effects on the frequencies of energy depositions are largely visible for the targets with diameters and heights smaller than 30 nm. For the target of 2.3 nm by 2.3 nm (similar to dimension of DNA segments), the calculated frequency- and dose-mean lineal energies for liquid water are up to 40% smaller than those for water vapour. The corresponding difference is less than 12% for the targets with diameters ≥ 30 nm.
CONCLUSIONS: Condensed-phase effects are non-negligible for microdosimetry of low-energy electrons for targets with sizes smaller than a few tens of nanometres, similar to dimensions of DNA molecular structures and nucleosomes.

Entities:  

Mesh:

Year:  2012        PMID: 22668077     DOI: 10.3109/09553002.2012.699136

Source DB:  PubMed          Journal:  Int J Radiat Biol        ISSN: 0955-3002            Impact factor:   2.694


  12 in total

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2.  Microdosimetry of DNA conformations: relation between direct effect of (60)Co gamma rays and topology of DNA geometrical models in the calculation of A-, B- and Z-DNA radiation-induced damage yields.

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3.  The influence of Geant4-DNA toolkit parameters on electron microdosimetric track structure.

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4.  Inelastic scattering of electrons in water from first principles: cross sections and inelastic mean free path for use in Monte Carlo track-structure simulations of biological damage.

Authors:  Natalia E Koval; Peter Koval; Fabiana Da Pieve; Jorge Kohanoff; Emilio Artacho; Dimitris Emfietzoglou
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7.  Recent Developments on gMicroMC: Transport Simulations of Proton and Heavy Ions and Concurrent Transport of Radicals and DNA.

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8.  MPEXS-DNA, a new GPU-based Monte Carlo simulator for track structures and radiation chemistry at subcellular scale.

Authors:  Shogo Okada; Koichi Murakami; Sebastien Incerti; Katsuya Amako; Takashi Sasaki
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Review 9.  Ionizing Radiation and Complex DNA Damage: Quantifying the Radiobiological Damage Using Monte Carlo Simulations.

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Journal:  Cancers (Basel)       Date:  2020-03-26       Impact factor: 6.639

10.  Fully integrated Monte Carlo simulation for evaluating radiation induced DNA damage and subsequent repair using Geant4-DNA.

Authors:  Dousatsu Sakata; Oleg Belov; Marie-Claude Bordage; Dimitris Emfietzoglou; Susanna Guatelli; Taku Inaniwa; Vladimir Ivanchenko; Mathieu Karamitros; Ioanna Kyriakou; Nathanael Lampe; Ivan Petrovic; Aleksandra Ristic-Fira; Wook-Geun Shin; Sebastien Incerti
Journal:  Sci Rep       Date:  2020-11-27       Impact factor: 4.379

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