Cellular dosimetry calculations for Strontium-90 using Monte Carlo code PENELOPE

Int J Radiat Biol. 2014 Nov;90(11):953-8. doi: 10.3109/09553002.2014.955144.

Abstract

Purpose: To improve risk assessments associated with chronic exposure to Strontium-90 (Sr-90), for both the environment and human health, it is necessary to know the energy distribution in specific cells or tissue. Monte Carlo (MC) simulation codes are extremely useful tools for calculating deposition energy. The present work was focused on the validation of the MC code PENetration and Energy LOss of Positrons and Electrons (PENELOPE) and the assessment of dose distribution to bone marrow cells from punctual Sr-90 source localized within the cortical bone part.

Materials and methods: S-values (absorbed dose per unit cumulated activity) calculations using Monte Carlo simulations were performed by using PENELOPE and Monte Carlo N-Particle eXtended (MCNPX). Cytoplasm, nucleus, cell surface, mouse femur bone and Sr-90 radiation source were simulated. Cells are assumed to be spherical with the radii of the cell and cell nucleus ranging from 2-10 μm. The Sr-90 source is assumed to be uniformly distributed in cell nucleus, cytoplasm and cell surface.

Results: The comparison of S-values calculated with PENELOPE to MCNPX results and the Medical Internal Radiation Dose (MIRD) values agreed very well since the relative deviations were less than 4.5%. The dose distribution to mouse bone marrow cells showed that the cells localized near the cortical part received the maximum dose.

Conclusion: The MC code PENELOPE may prove useful for cellular dosimetry involving radiation transport through materials other than water, or for complex distributions of radionuclides and geometries.

Keywords: MCNPX; MIRD; PENELOPE; Sr-90; cellular dosimetry; validation.

MeSH terms

  • Algorithms
  • Animals
  • Bone Marrow Cells / radiation effects
  • Bone and Bones / radiation effects
  • Cell Membrane / radiation effects
  • Cell Nucleus / radiation effects
  • Computer Simulation
  • Cytoplasm / radiation effects
  • Kinetics
  • Mice
  • Monte Carlo Method
  • Radiometry / methods*
  • Risk Assessment / methods
  • Software
  • Strontium Radioisotopes / chemistry*

Substances

  • Strontium Radioisotopes