Estimating long-term health risks after breast cancer radiotherapy. Merging evidence from low and high doses
Creators
- 1. Institute of Radiation Medicine, Helmholtz Zentrum München, Ingolstädter Landstraße 1, 85764, Neuherberg (Germany)
- 2. Institute of Medical Biostatistics, Epidemiology and Informatics, University Medical Center Mainz, Obere Zahlbacher Str. 69, 55131, Mainz (Germany)
- 3. Department of Radiation Dosimetry, Nuclear Physics Institute of the Czech Academy of Sciences, Na Truhlářce 39/64, 180 00, Prague 8 (Czech Republic)
- 4. IAEA Environment Laboratories, International Atomic Energy Agency, 2444, Seibersdorf (Austria)
- 5. Division of Infectious Diseases and Tropical Medicine, University Hospital, Ludwig-Maximilians-Universität (LMU) Munich, 80802, Munich (Germany)
- 6. Department of Radiation Protection and Health, Federal Office for Radiation Protection, Ingolstädter Landstraße 1, 85764, Neuherberg (Germany)
Description
In breast cancer radiotherapy, substantial radiation exposure of organs other than the treated breast cannot be avoided, potentially inducing second primary cancer or heart disease. While distant organs and large parts of nearby ones receive doses in the mGy-Gy range, small parts of the heart, lung and bone marrow often receive doses as high as 50 Gy. Contemporary treatment planning allows for considerable flexibility in the distribution of this exposure. To optimise treatment with regards to long-term health risks, evidence-based risk estimates are required for the entire broad range of exposures. Here, we thus propose an approach that combines data from medical and epidemiological studies with different exposure conditions. Approximating cancer induction as a local process, we estimate organ cancer risks by integrating organ-specific dose-response relationships over the organ dose distributions. For highly exposed organ parts, specific high-dose risk models based on studies with medical exposure are applied. For organs or their parts receiving relatively low doses, established dose-response models based on radiation-epidemiological data are used. Joining the models in the intermediate dose range leads to a combined, in general non-linear, dose response supported by data over the whole relevant dose range. For heart diseases, a linear model consistent with high- and low-dose studies is presented. The resulting estimates of long-term health risks are largely compatible with rate ratios observed in randomised breast cancer radiotherapy trials. The risk models have been implemented in a software tool PASSOS that estimates long-term risks for individual breast cancer patients.
Additional details
Identifiers
Publishing Information
- Journal Title
- Radiation and Environmental Biophysics (Online)
- Journal Volume
- 60
- Journal Issue
- 3
- Journal Page Range
- p. 459-474
- ISSN
- 1432-2099
INIS
- Country of Publication
- Germany
- Country of Input or Organization
- Germany
- INIS RN
- 52100889
- Subject category
- S62: RADIOLOGY AND NUCLEAR MEDICINE;
- Descriptors DEI
- BONE MARROW; CARCINOMAS; CARDIOVASCULAR DISEASES; COMPUTER CODES; DELAYED RADIATION EFFECTS; DOSE-RESPONSE RELATIONSHIPS; FRACTIONATED IRRADIATION; GY RANGE 01-10; GY RANGE 10-100; HEART; LEUKEMIA; LUNGS; MAMMARY GLANDS; NONLINEAR PROBLEMS; PLANNING; RADIATION DOSE DISTRIBUTIONS; RADIATION DOSES; RADIATION HAZARDS; RADIOTHERAPY
- Descriptors DEC
- ABSORBED DOSE RANGE; ANIMAL TISSUES; BIOLOGICAL EFFECTS; BIOLOGICAL RADIATION EFFECTS; BODY; CARDIOVASCULAR SYSTEM; DISEASES; DOSES; GLANDS; GY RANGE; HAZARDS; HEALTH HAZARDS; HEMATOPOIETIC SYSTEM; IMMUNE SYSTEM DISEASES; IRRADIATION; MEDICINE; NEOPLASMS; NUCLEAR MEDICINE; ORGANS; RADIATION DOSE RANGES; RADIATION EFFECTS; RADIOLOGY; RESPIRATORY SYSTEM; THERAPY