Biophysical Modeling of the Ionizing Radiation Influence on Cells Using the Stochastic (Monte Carlo) and Deterministic (Analytical) Approaches

Author:

Fornalski Krzysztof W.12ORCID,Adamowski Łukasz2ORCID,Bugała Ernest1,Jarmakiewicz Rafał1,Kirejczyk Marek2,Kopyciński Jakub3,Krasowska Julianna1,Kukulski Piotr4,Piotrowski Łukasz1,Ponikowska Julia1,Reszczyńska Joanna5,Słonecka Iwona1,Wysocki Paweł1,Dobrzyński Ludwik2

Affiliation:

1. Faculty of Physics, Warsaw University of Technology (WF PW), Poland

2. National Centre for Nuclear Research (NCBJ), Poland

3. Center for Theoretical Physics, Polish Academy of Sciences (CFT PAN), Poland

4. Department of Mechanical, Aerospace and Civil Engineering, University of Manchester (MACE UoM), United Kingdom

5. Mossakowski Medical Research Institute, Polish Academy of Sciences (IMDiK PAN), Poland

Abstract

This review article describes our simplified biophysical model for the response of a group of cells to ionizing radiation. The model, which is a product of 10 years of studies, acts as (a) a comprehensive stochastic approach based on the Monte Carlo simulation with a probability tree and (b) the thereof derived detailed deterministic models describing the selected biophysical and radiobiological phenomena in an analytical manner. Specifically, the presented model describes effects such as the risk of neoplastic transformation of cells relative to the absorbed radiation dose, the dynamics of tumor development, the priming dose effect (also called the Raper–Yonezawa effect) based on the introduced adaptive response approach, and the bystander effect. The model is also modifiable depending on users’ potential needs.

Publisher

SAGE Publications

Subject

Chemical Health and Safety,Health, Toxicology and Mutagenesis,Public Health, Environmental and Occupational Health,Toxicology

Reference59 articles.

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