Radon as a Tracer of Lung Changes Induced by Smoking

. 2020 Feb ; 40 (2) : 370-384. [epub] 20190812

Jazyk angličtina Země Spojené státy americké Médium print-electronic

Typ dokumentu časopisecké články, práce podpořená grantem

Perzistentní odkaz   https://www.medvik.cz/link/pmid31404471

After smoking, exposure to radon and its progeny is the second leading cause of lung cancer. The probability of inducing lung carcinomas by inhaled radon progeny depends on the deposited radiation dose, and is significantly affected by physiological and morphometric changes induced by smoking. Due to irritation of the airways, the inhalation of cigarette smoke leads to the hyperproduction of mucus. Two concurrent processes occur: on one hand, increased production of mucus protects the target cells against radiation damage; on the other hand, in the case of long-term smokers, a chronic lung obstruction develops, causing an increase in the radiation dose to the lungs. Depending on the duration and intensity of smoking, these processes contribute to the final radiation dose with different weights. The primary objective of this study was to investigate to what extent these smoke-induced changes can modify the resulting absorbed dose of inhaled radon progeny relative to healthy nonsmokers. Since the bronchial dose depends on the degree of lung tissue damage, we have used this dose as a tool for detecting the effects of smoking on the lung epithelium. In other words, the biological effect of radon served as a tracer of changes induced by smoking.

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Baias, P. F., Hofmann, W., Winkler-Heil, R., Cosma, C., & Duliu, O. C. (2010). Lung dosimetry for inhaled radon progeny in smoker. Radiation Protection Dosimetry, 138, 111-118.

Böhm, R., Nikodémová, D., & Holý, K. (2003). Use of various microdosimetric models for the prediction of radon induced damage in human lungs. Radiation Protection Dosimetry, 104(2), 127-137.

Böhm, R., Sedlák, A., Bulko, M., & Holý, K. (2014). Use of threshold-specific energy model for the prediction of effects of smoking and radon exposure on the risk of lung cancer. Radiation Protection Dosimetry, 160(1-3), 100-103.

Böhm, R., Sedlák, A., Bulko, M., & Holý, K. (2019). Lung regeneration in abstaining smokers. Radiation Protection Dosimetry (in press).

Hofmann, W., Ménache, M., Crawford-Brown, D., Caswell, R. S., & Karam, L. R. (2000). Modelling energy deposition and cellular radiation effects in human bronchial epithelium by radon progeny alpha particles. Health Physics, 78(4), 377-393.

Hui, T. E., Poston, J. W., & Fisher, D. R. (1990). The microdosimetry of radon decay products in the respiratory tract. Radiation Protection Dosimetry, 31, 405-411.

International Commission on Radiological Protection [ICRP]. (1994). Human respiratory tract model for radiological protection. ICRP Publication 66, Ann. ICRP 24(1-3).

Jin, Q., Menter, D. G., Mao, L., Hong, W. K., & Lee, H. Y. (2008). Survivin expression in normal human bronchial epithelial cells: An early and critical step in tumorigenesis induced by tobacco exposure. Carcinogenesis, 29, 1614-1622.

Krewski, D., Ziellinski, J. M., Hazelton, W. D., Garner, M. J., & Moolgavkar, S. H. (2003). The use of biologically based cancer risk models in radiation epidemiology. Radiation Protection Dosimetry, 104, 367-376.

Mercer, R. R., Russel, M. L., & Crapo, J. D. (1991). Radon dosimetry based on the depth distribution of nuclei in human and rat lungs. Health Physics, 61, 117-130.

National Research Council [NRC]. (1999). Health effects of exposure to radon: BEIR VI, Washington, DC: National Academy Press.

Nikezic, D., & Yu, K. N. (2001). Alpha hit frequency due to radon decay products in human lung cells. International Journal of Radiation Biology, 77(5), 559-565.

Nikezic, D., & Yu, K. N. (2002). Distributions of specific energy in sensitive layers of the human respiratory tract. Radiation Research, 157(1), 92-98.

Sedlák, A. (1996). Microdosimetric approach to the problem of lung cancer induced by radon progeny. Health Physics, 70(5), 680-688.

Tomášek, L. (2016). Lung cancer risk from radon and smoking: Additive or multiplicative effect? 8th Conference on Protection Against Radon at Home and at Work, Prague, Czech Republic, September 12-16, 2016, (p. 48). Czech Technical University in Prague.

Yu, K. N., Lau, B. M., & Nikezic, D. (2006). Assessment of environmental radon hazard using human respiratory tract models. Journal of Hazardous Materials, 132, 98-110.

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