Published November 2013 | Version v1
Journal article

Estimating the biological half-life for radionuclides in homoeothermic vertebrates: a simplified allometric approach

  • 1. Lancaster Environment Centre, NERC Centre for Ecology and Hydrology, Lancaster (United Kingdom)
  • 2. Belgian Nuclear Research Centre, Mol (Belgium)

Description

The application of allometric, or mass-dependent, relationships within radioecology has increased with the evolution of models to predict the exposure of organisms other than man. Allometry presents a method of addressing the lack of empirical data on radionuclide transfer and metabolism for the many radionuclide-species combinations which may need to be considered. However, sufficient data across a range of species with different masses are required to establish allometric relationships and this is not always available. Here, an alternative allometric approach to predict the biological half-life of radionuclides in homoeothermic vertebrates which does not require such data is derived. Biological half-life values are predicted for four radionuclides and compared to available data for a range of species. All predictions were within a factor of five of the observed values when the model was parameterised appropriate to the feeding strategy of each species. This is an encouraging level of agreement given that the allometric models are intended to provide broad approximations rather than exact values. However, reasons why some radionuclides deviate from what would be anticipated from Kleiber's law need to be determined to allow a more complete exploitation of the potential of allometric extrapolation within radioecological models. (orig.)

Availability note (English)

Available from: http://dx.doi.org/10.1007/s00411-013-0481-x

Additional details

Identifiers

Publishing Information

Journal Title
Radiation and Environmental Biophysics
Journal Volume
52
Journal Issue
4
Journal Page Range
p. 505-511
ISSN
0301-634X
CODEN
REBPAT