Biologically based modeling of multimedia, multipathway, multiroute population exposures to arsenic
Open Access
- 12 December 2007
- journal article
- research article
- Published by Springer Nature in Journal of Exposure Science & Environmental Epidemiology
- Vol. 18 (5) , 462-476
- https://doi.org/10.1038/sj.jes.7500637
Abstract
This article presents an integrated, biologically based, source-to-dose assessment framework for modeling multimedia/multipathway/multiroute exposures to arsenic. Case studies demonstrating this framework are presented for three US counties (Hunderton County, NJ; Pima County, AZ; and Franklin County, OH), representing substantially different conditions of exposure. The approach taken utilizes the Modeling ENvironment for TOtal Risk studies (MENTOR) in an implementation that incorporates and extends the approach pioneered by Stochastic Human Exposure and Dose Simulation (SHEDS), in conjunction with a number of available databases, including NATA, NHEXAS, CSFII, and CHAD, and extends modeling techniques that have been developed in recent years. Model results indicate that, in most cases, the food intake pathway is the dominant contributor to total exposure and dose to arsenic. Model predictions are evaluated qualitatively by comparing distributions of predicted total arsenic amounts in urine with those derived using biomarker measurements from the NHEXAS — Region V study: the population distributions of urinary total arsenic levels calculated through MENTOR and from the NHEXAS measurements are in general qualitative agreement. Observed differences are due to various factors, such as interindividual variation in arsenic metabolism in humans, that are not fully accounted for in the current model implementation but can be incorporated in the future, in the open framework of MENTOR. The present study demonstrates that integrated source-to-dose modeling for arsenic can not only provide estimates of the relative contributions of multipathway exposure routes to the total exposure estimates, but can also estimate internal target tissue doses for speciated organic and inorganic arsenic, which can eventually be used to improve evaluation of health risks associated with exposures to arsenic from multiple sources, routes, and pathways.Keywords
This publication has 45 references indexed in Scilit:
- Arsenic and Cigarette Smoke Synergistically Increase DNA Oxidation in the LungToxicologic Pathology, 2006
- From a Theoretical Framework of Human Exposure and Dose Assessment to Computational System Implementation: TheModelingENvironment forTOtalRisk Studies (MENTOR)Journal of Toxicology and Environmental Health, Part B, 2006
- Assessment of human exposure to copper: A case study using the NHEXAS databaseJournal of Exposure Science & Environmental Epidemiology, 2005
- Metabolomics of arsenic based on speciation studiesAnalytica Chimica Acta, 2005
- A source-to-dose assessment of population exposures to fine PM and ozone in Philadelphia, PA, during a summer 1999 episodeJournal of Exposure Science & Environmental Epidemiology, 2005
- Environmental, dietary, demographic, and activity variables associated with biomarkers of exposure for benzene and leadJournal of Exposure Science & Environmental Epidemiology, 2003
- Modeled estimates of chlorpyrifos exposure and dose for the Minnesota and Arizona NHEXAS populationsJournal of Exposure Science & Environmental Epidemiology, 2001
- Dietary arsenic intakes in the United States: FDA Total Diet Study, September 1991-December 1996Food Additives & Contaminants, 1999
- Intake of Inorganic Arsenic in the North American DietHuman and Ecological Risk Assessment: An International Journal, 1998
- Use of human metabolic studies and urinary arsenic speciation in assessing arsenic exposureBulletin of Environmental Contamination and Toxicology, 1991