Literature DB >> 25361400

Radiation organ doses received in a nationwide cohort of U.S. radiologic technologists: methods and findings.

Steven L Simon1, Dale L Preston, Martha S Linet, Jeremy S Miller, Alice J Sigurdson, Bruce H Alexander, Deukwoo Kwon, R Craig Yoder, Parveen Bhatti, Mark P Little, Preetha Rajaraman, Dunstana Melo, Vladimir Drozdovitch, Robert M Weinstock, Michele M Doody.   

Abstract

In this article, we describe recent methodological enhancements and findings from the dose reconstruction component of a study of health risks among U.S. radiologic technologists. An earlier version of the dosimetry published in 2006 used physical and statistical models, literature-reported exposure measurements for the years before 1960, and archival personnel monitoring badge data from cohort members through 1984. The data and models previously described were used to estimate annual occupational radiation doses for 90,000 radiological technologists, incorporating information about each individual's employment practices based on a baseline survey conducted in the mid-1980s. The dosimetry methods presented here, while using many of the same methods as before, now estimate 2.23 million annual badge doses (personal dose equivalent) for the years 1916-1997 for 110,374 technologists, but with numerous methodological improvements. Every technologist's annual dose is estimated as a probability density function to reflect uncertainty about the true dose. Multiple realizations of the entire cohort distribution were derived to account for shared uncertainties and possible biases in the input data and assumptions used. Major improvements in the dosimetry methods from the earlier version include: A substantial increase in the number of cohort member annual badge dose measurements; Additional information on individual apron usage obtained from surveys conducted in the mid-1990s and mid-2000s; Refined modeling to develop lognormal annual badge dose probability density functions using censored data regression models; Refinements of cohort-based annual badge probability density functions to reflect individual work patterns and practices reported on questionnaires and to more accurately assess minimum detection limits; and Extensive refinements in organ dose conversion coefficients to account for uncertainties in radiographic machine settings for the radiographic techniques employed. For organ dose estimation, we rely on well-researched assumptions about critical exposure-related variables and their changes over the decades, including the peak kilovoltage and filtration typically used in conducting radiographic examinations, and the usual body location for wearing radiation monitoring badges, the latter based on both literature and national recommendations. We have derived organ dose conversion coefficients based on air-kerma weighting of photon fluences from published X-ray spectra and derived energy-dependent transmission factors for protective lead aprons of different thicknesses. Findings are presented on estimated organ doses for 12 organs and tissues: red bone marrow, female breast, thyroid, brain, lung, heart, colon, ovary, testes, skin of trunk, skin of head and neck and arms, and lens of the eye.

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Year:  2014        PMID: 25361400      PMCID: PMC4406479          DOI: 10.1667/RR13542.1

Source DB:  PubMed          Journal:  Radiat Res        ISSN: 0033-7587            Impact factor:   2.841


  27 in total

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4.  Recommendations for personnel monitoring in diagnostic radiology.

Authors:  S C Bushong; T S Harle; M J Pogonowska
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5.  Radiation control in diagnostic roentgenology.

Authors:  S C Bushong
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6.  External radiation doses from occupational exposure.

Authors:  M J Duggan; E Greenslade; B E Jones
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Review 7.  Radiation safety considerations for diagnostic radiology personnel.

Authors:  L Brateman
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8.  Association of chromosome translocation rate with low dose occupational radiation exposures in U.S. radiologic technologists.

Authors:  Mark P Little; Deukwoo Kwon; Kazataka Doi; Steven L Simon; Dale L Preston; Michele M Doody; Terrence Lee; Jeremy S Miller; Diane M Kampa; Parveen Bhatti; James D Tucker; Martha S Linet; Alice J Sigurdson
Journal:  Radiat Res       Date:  2014-06-16       Impact factor: 2.841

9.  Standards for protection against radiation--Nuclear Regulatory Commission. Final rule.

Authors: 
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10.  Mortality from diseases of the circulatory system in radiologic technologists in the United States.

Authors:  Michael Hauptmann; Aparna K Mohan; Michele M Doody; Martha S Linet; Kiyohiko Mabuchi
Journal:  Am J Epidemiol       Date:  2003-02-01       Impact factor: 4.897

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  31 in total

Review 1.  A New Era of Low-Dose Radiation Epidemiology.

Authors:  Cari M Kitahara; Martha S Linet; Preetha Rajaraman; Estelle Ntowe; Amy Berrington de González
Journal:  Curr Environ Health Rep       Date:  2015-09

2.  Fluoroscopy X-Ray Organ-Specific Dosimetry System (FLUXOR) for Estimation of Organ Doses and Their Uncertainties in the Canadian Fluoroscopy Cohort Study.

Authors:  A Iulian Apostoaei; Brian A Thomas; F Owen Hoffman; David C Kocher; Kathleen M Thiessen; David Borrego; Choonsik Lee; Steven L Simon; Lydia B Zablotska
Journal:  Radiat Res       Date:  2021-04-01       Impact factor: 2.841

3.  Cataract risk in US radiologic technologists assisting with fluoroscopically guided interventional procedures: a retrospective cohort study.

Authors:  Raquel Velazquez-Kronen; David Borrego; Ethel S Gilbert; Donald L Miller; Kirsten B Moysich; Jo L Freudenheim; Jean Wactawski-Wende; Elizabeth K Cahoon; Mark P Little; Amy E Millen; Stephen Balter; Bruce H Alexander; Steven L Simon; Martha S Linet; Cari M Kitahara
Journal:  Occup Environ Med       Date:  2019-03-19       Impact factor: 4.402

4.  ESTIMATION OF ORGAN DOSES AMONG DIAGNOSTIC MEDICAL RADIATION WORKERS IN SOUTH KOREA.

Authors:  Yeongchull Choi; Eun Shil Cha; Ye Jin Bang; Seulki Ko; Mina Ha; Choonsik Lee; Won Jin Lee
Journal:  Radiat Prot Dosimetry       Date:  2018-04-01       Impact factor: 0.972

5.  A U.S. Multicenter Study of Recorded Occupational Radiation Badge Doses in Nuclear Medicine.

Authors:  Daphnée Villoing; R Craig Yoder; Christopher Passmore; Marie-Odile Bernier; Cari M Kitahara
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6.  Use of radiopharmaceuticals in diagnostic nuclear medicine in the United States: 1960-2010.

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7.  Occupational radiation exposure and risk of cataract incidence in a cohort of US radiologic technologists.

Authors:  Mark P Little; Cari M Kitahara; Elizabeth K Cahoon; Marie-Odile Bernier; Raquel Velazquez-Kronen; Michele M Doody; David Borrego; Jeremy S Miller; Bruce H Alexander; Steven L Simon; Dale L Preston; Nobuyuki Hamada; Martha S Linet; Craig Meyer
Journal:  Eur J Epidemiol       Date:  2018-08-27       Impact factor: 8.082

8.  Work history and radioprotection practices in relation to cancer incidence and mortality in US radiologic technologists performing nuclear medicine procedures.

Authors:  Marie Odile Bernier; Michele M Doody; Miriam E Van Dyke; Daphné Villoing; Bruce H Alexander; Martha S Linet; Cari M Kitahara
Journal:  Occup Environ Med       Date:  2018-05-02       Impact factor: 4.402

9.  The two-dimensional Monte Carlo: a new methodologic paradigm for dose reconstruction for epidemiological studies.

Authors:  Steven L Simon; F Owen Hoffman; Eduard Hofer
Journal:  Radiat Res       Date:  2014-12-12       Impact factor: 2.841

10.  Association of chromosome translocation rate with low dose occupational radiation exposures in U.S. radiologic technologists.

Authors:  Mark P Little; Deukwoo Kwon; Kazataka Doi; Steven L Simon; Dale L Preston; Michele M Doody; Terrence Lee; Jeremy S Miller; Diane M Kampa; Parveen Bhatti; James D Tucker; Martha S Linet; Alice J Sigurdson
Journal:  Radiat Res       Date:  2014-06-16       Impact factor: 2.841

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