Published September 2015 | Version v1
Journal article

A mathematical model of radiation-induced responses in a cellular population including cell-to-cell communications

  • 1. Research Group for Radiation Effect Analysis, Japan Atomic Energy Agency, Ibaraki (Japan)
  • 2. Microbeam Radiation Biology Group, Japan Atomic Energy Agency, Gunma (Japan)
  • 3. Research Group for Radiation and Biomolecular Science, Japan Atomic Energy Agency, Ibaraki (Japan)

Description

Cell-to-cell communication is an important factor for understanding the mechanisms of radiation-induced responses such as bystander effects. In this study, a new mathematical model of intercellular signalling between individual cells in a cellular population is proposed. The authors considered two types of transmission of signals: via culture medium and via gap junction. They focus on the effects that radiation and intercellular signalling have on cell-cycle modification. The cell cycle is represented as a virtual clock that includes several checkpoint pathways within a cyclic process. They also develop a grid model and set up diffusion equations to model the propagation of signals to and from spatially located cells. The authors have also considered the role that DNA damage plays in the cycle of cells which can progress through the cell cycle or stop at the G1, S, G2 or M-phase checkpoints. Results of testing show that the proposed model can simulate intercellular signalling and cell-cycle progression in individual cells during and after irradiation. (authors)

Availability note (English)

Available from doi: http://dx.doi.org/10.1093/rpd/ncv149

Additional details

Identifiers

Publishing Information

Journal Title
Radiation Protection Dosimetry
Journal Volume
166
Journal Issue
1-4
Journal Page Range
p. 142-147
ISSN
0144-8420

Conference

Title
16. International Symposium on Microdosimetry
Acronym
Micros 2013
Dates
20-25 Oct 2013
Place
Treviso (Italy)

Optional Information

Notes
11 refs.