24
Views
2
CrossRef citations to date
0
Altmetric
Articles

Simulation of the relative damaging effects of Auger cascades with gel scintillators

Pages 1057-1062 | Received 25 Jun 2008, Accepted 16 Aug 2008, Published online: 03 Jul 2009

References

  • Chan P C, Lisco E, Lisco S, Adestein S J. Cell survival and cytogenetic responses to 125I-UdR in cultured mammalian cells. Current Topics in Radiation Research 1978; 12: 426–435
  • Charlton D E, Booz J. A Monte Carlo treatment of the decay of I-125. Radiation Research 1981; 87: 10–23
  • Baró J, Sempau J, Fernández-Varea N, Salvat F. PENÉLOPE: An algorithm for Monte Carlo simulation of the penetration and energy loss of electrons and positrons in matter. Nuclear Instruments and Methods in Physics Research B 1995; 100: 31–46
  • Berger M J, Seltzer S M. ETRAN, Monte Carlo code system for electron and photon transport through extended media. 1973, ORNL documentation for RISC computer code package CCC-107
  • Bodei L, Kassis A I, Adelstein J, Mariani G. Radionuclide therapy with iodine-125 and other Auger-electron-emitting radionuclides: Experimental models and clinical applications. Cancer Biotherapy and Radiopharmaceuticals 2003; 18: 861–877
  • Coursey B M, Calhoun J M, Cessna J, Golas D B, Schima F J. Liquid scintillation counting techniques for the standardization of radionuclides used in therapy. Nuclear Instruments and Methods 1994; 339: 26–31
  • Fulford J, Bonner P, Goodhead D T, Hill A, O'Neill. Experimental determination of the dependence of OH radical yield on photon energy: A comparison with theoretical simulations. Journal of Physical Chemistry A 1999; 103: 11345–11349
  • Grau Carles A. Nanodosimeters based on gel scintillators. Radiation Protection Dosimetry 2006; 122: 420–426
  • Grau Carles A. MICELLE, the micelle size effect on the LS counting efficiency. Computer Physics Communications 2007a; 176: 305–317
  • Grau Carles A. Analysis and simulation of the relative lethality of Auger-electron-emitting radionuclides with a liquid-scintillation counter. International Journal Radiation Biology 2007b; 83: 617–623
  • Grau Malonda A. Counting efficiency for electron capture nuclides in liquid scintillator solutions. Applied Radiation and Isotopes 1982; 33: 371–375
  • Howell R W. Radiation spectra for Auger-electron emitting radionuclides: Report No 2 of AAPM Nuclear Medicine Task Group No 6. Medical Physics 1992; 19: 1371–1383
  • Humm J L. The analysis of Auger electrons released following the decay of radioisotopes and photoelectric interactions and their contribution to energy deposition. 1984, KFA Report Jülich No. 1932, Ph.D. Thesis, Germany
  • Humm J L, Charlton D E. A new calculation method to assess the therapeutic potential of Auger electron emission. International Journal of Radiation Oncology, Biology, Physics 1989; 17: 351–360
  • L'Annunziata M F. Handbook of radiactivity analysis. Academic Press, New York 2003, ISBN 0124366031
  • Li W, Friedland W, Jacob P, Partzke H G, Panyutin I, Neumann R D. Simulation of 125I induced DNA strand breaks in a CAP-DNA complex. Radiation Protection Dosimetry 2002; 99: 109–112
  • Li W B, Friedland W, Jacob P, Panyutin I G, Paretzke H G. Simulation of 125I decay in a synthetic oligodeoxynucleotide with normal and distorted geometry and the role of radiation and non-radiation actions. Radiation Environmental Biophysics 2004; 43: 23–33
  • Lobachevsky P N, Martin R F. Iodine-125 decay in a synthetic oligodeoxynucleotide. I. Fragment size distribution and evaluation of breakage probability. Radiation Research 2000; 153: 263–270
  • Lobachevsky P N, Martin R F. DNA breakage by decay of Auger electron emitters: experiments with 123I-iodoHoechst 33258 and plasmid DNA. Radiation Research 2005; 164: 766–773
  • Moiseenko V V, Hamm R N, Waker A J, Prestwich W V. Modelling DNA damage induced by different energy photons and tritium beta-particles. International Journal Radiation Biology 1998; 74: 533–550
  • Nelson W R, Hirayama H, Rogers D W. 1973, The EGS4 code system, SLAC-Report-265
  • Semenenko V A, Turner J E, Borak T B. NOREC, a Monte Carlo code for simulating electron tracks in liquid water. Radiation Environmental Biophysics 2003; 42: 213–217
  • Stepanek J. A program to determine the radiation spectra due to a single atomic-subshell ionization by a particle or due to deexcitation or decay of radionuclides. Computer Physics Communications 1997; 106: 237–257
  • Paretzke H G. Radiation track structure theory. Kinetics of nonhomogeneous processes, G R Treeman. Wiley, New York 1987; 89–170
  • Pomplun E, Booz J, Charlton D E. A Monte Carlo simulation of Auger cascades. Radiation Research 1987; 111: 533–552
  • Terrissol M, Beaudre A. Simulation of space and time evolution of radiolytic species induced by electrons in water. Radiation Protection Dosimetry 1990; 31: 171–175
  • Tomita H, Kai M, Kusama T, Ito A. A Monte Carlo simulation of physicochemical processes of liquid water radiolysis: The effects of dissolved oxygen and OH scavenger. Radiation Environmental Biophysics 1997; 36: 105–116
  • Uehara S, Nikjoo H, Goohead D T. Cross-sections for water vapour for the Monte Carlo electron track structure code from 10 eV to the MeV region. Physics in Medicine and Biology 1993; 38: 1841–1858

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.