Radiation track, DNA damage and response—a review
- 1. Radiation Biophysics Group, Department of Oncology–Pathology, Karolinska Institutet, Box 260, P9-02, Stockholm 17176 (Sweden)
- 2. Medical Physics Laboratory, University of Ioannina Medical School, 45110 Ioannina (Greece)
- 3. Nuclear Research and Development Division, Thailand Institute of Nuclear Technology, 9/9 Moo 7, Saimoon, Ongkharak, Nakhon Nayok 26120 (Thailand)
- 4. Division of Medical Physics and Engineering, Department of Radiation Oncology, UT Southwestern Medical Center, Dallas, TX 75390-8542 (United States)
- 5. Department of Physics, Stockholm University, Albanova University Center, SE-106 91 Stockholm (Sweden)
- 6. School of Health Sciences, Kyushu University, Fukuoka (Japan)
Description
The purpose of this paper has been to review the current status and progress of the field of radiation biophysics, and draw attention to the fact that physics, in general, and radiation physics in particular, with the aid of mathematical modeling, can help elucidate biological mechanisms and cancer therapies. We hypothesize that concepts of condensed-matter physics along with the new genomic knowledge and technologies and mechanistic mathematical modeling in conjunction with advances in experimental DNA (Deoxyrinonucleic acid molecule) repair and cell signaling have now provided us with unprecedented opportunities in radiation biophysics to address problems in targeted cancer therapy, and genetic risk estimation in humans. Obviously, one is not dealing with 'low-hanging fruit', but it will be a major scientific achievement if it becomes possible to state, in another decade or so, that we can link mechanistically the stages between the initial radiation-induced DNA damage; in particular, at doses of radiation less than 2 Gy and with structural changes in genomic DNA as a precursor to cell inactivation and/or mutations leading to genetic diseases. The paper presents recent development in the physics of radiation track structure contained in the computer code system KURBUC, in particular for low-energy electrons in the condensed phase of water for which we provide a comprehensive discussion of the dielectric response function approach. The state-of-the-art in the simulation of proton and carbon ion tracks in the Bragg peak region is also presented. The paper presents a critical discussion of the models used for elastic scattering, and the validity of the trajectory approach in low-electron transport. Brief discussions of mechanistic and quantitative aspects of microdosimetry, DNA damage and DNA repair are also included as developed by the authors' work. (review)
Availability note (English)
Available from http://dx.doi.org/10.1088/0034-4885/79/11/116601Additional details
Identifiers
Publishing Information
- Journal Title
- Reports on Progress in Physics
- Journal Volume
- 79
- Journal Issue
- 11
- Journal Page Range
- [55 p.]
- ISSN
- 0034-4885
- CODEN
- RPPHAG
INIS
- Country of Publication
- United Kingdom
- Country of Input or Organization
- International Atomic Energy Agency (IAEA)
- INIS RN
- 49075070
- Subject category
- S63: RADIATION, THERMAL, AND OTHER ENVIRONMENTAL POLLUTANT EFFECTS ON LIVING ORGANISMS AND BIOLOGICAL MATERIALS;
- Descriptors DEI
- BRAGG CURVE; CARBON IONS; DNA DAMAGES; DNA REPAIR; NEOPLASMS; RADIOTHERAPY
- Descriptors DEC
- BIOLOGICAL RECOVERY; BIOLOGICAL REPAIR; CHARGED PARTICLES; DIAGRAMS; DISEASES; INFORMATION; IONS; MEDICINE; NUCLEAR MEDICINE; RADIOLOGY; REPAIR; THERAPY