Literature DB >> 17090483

From a theoretical framework of human exposure and dose assessment to computational system implementation: the Modeling ENvironment for TOtal Risk Studies (MENTOR).

Panos G Georgopoulos1, Paul J Lioy.   

Abstract

Georgopoulos and Lioy (1994) presented a theoretical framework for exposure analysis, incorporating multiple levels of empirical and mechanistic information while characterizing/reducing uncertainties. The present review summarizes efforts towards implementing that framework, through the development of a mechanistic source-to-dose Modeling ENvironment for TOtal Risks studies (MENTOR), a computational toolbox that provides various modeling and data analysis tools to facilitate assessment of cumulative and aggregate (multipathway) exposures to contaminant mixtures. MENTOR adopts a "Person Oriented Modeling" (POM) approach that can be applied to either specific individuals or to populations/subpopulations of interest; the latter is accomplished by defining samples of "virtual" individuals that statistically reproduce the physiological, demographic, etc., attributes of the populations studied. MENTOR implementations currently incorporate and expand USEPA's SHEDS (Stochastic Human Exposure and Dose Simulation) approach and consider multiple exposure routes (inhalation, food, drinking water intake; non-dietary ingestion; dermal absorption). Typically, simulations involve: (1) characterizing background levels of contaminants by combining model predictions and measurement studies; (2) characterizing multimedia levels and temporal profiles of contaminants in various residential and occupational microenvironments; (3) selecting sample populations that statistically reproduce essential demographics (age, gender, race, occupation, education) of relevant population units (e.g., census tracts); (4) developing activity event sequences for each member of the sample by matching attributes to entries of USEPA's Consolidated Human Activity Database (CHAD); (5) calculating intake rates for the sample population members, reflecting physiological attributes and activities pursued; (6) combining intake rates from multiple routes to assess exposures; (7) estimating target tissue doses with physiologically based dosimetry/toxicokinetic modeling.

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Year:  2006        PMID: 17090483     DOI: 10.1080/10937400600755929

Source DB:  PubMed          Journal:  J Toxicol Environ Health B Crit Rev        ISSN: 1093-7404            Impact factor:   6.393


  24 in total

1.  A mechanistic modeling system for estimating large scale emissions and transport of pollen and co-allergens.

Authors:  Christos Efstathiou; Sastry Isukapalli; Panos Georgopoulos
Journal:  Atmos Environ (1994)       Date:  2011-04-01       Impact factor: 4.798

2.  A personal exposure study employing scripted activities and paths in conjunction with atmospheric releases of perfluorocarbon tracers in Manhattan, New York.

Authors:  Paul J Lioy; Daniel Vallero; Gary Foley; Panos Georgopoulos; John Heiser; Tom Watson; Michael Reynolds; James Daloia; Sai Tong; Sastry Isukapalli
Journal:  J Expo Sci Environ Epidemiol       Date:  2007-05-16       Impact factor: 5.563

3.  Reconstructing population exposures to environmental chemicals from biomarkers: challenges and opportunities.

Authors:  Panos G Georgopoulos; Alan F Sasso; Sastry S Isukapalli; Paul J Lioy; Daniel A Vallero; Miles Okino; Larry Reiter
Journal:  J Expo Sci Environ Epidemiol       Date:  2008-03-26       Impact factor: 5.563

4.  A unified multiscale field/network/agent based modeling framework for human and ecological health risk analysis.

Authors:  Panos G Georgopoulos; Sastry S Isukapalli
Journal:  Conf Proc IEEE Eng Med Biol Soc       Date:  2009

5.  Modeling of personal exposures to ambient air toxics in Camden, New Jersey: an evaluation study.

Authors:  Sheng-Wei Wang; Xiaogang Tang; Zhi-Hua Fan; Xiangmei Wu; Paul J Lioy; Panos G Georgopoulos
Journal:  J Air Waste Manag Assoc       Date:  2009-06       Impact factor: 2.235

6.  A tiered framework for risk-relevant characterization and ranking of chemical exposures: applications to the National Children's Study (NCS).

Authors:  Panos G Georgopoulos; Christopher J Brinkerhoff; Sastry Isukapalli; Michael Dellarco; Philip J Landrigan; Paul J Lioy
Journal:  Risk Anal       Date:  2014-01-27       Impact factor: 4.000

7.  Probabilistic Modeling of Dietary Arsenic Exposure and Dose and Evaluation with 2003-2004 NHANES Data.

Authors:  Jianping Xue; Valerie Zartarian; Sheng-Wei Wang; Shi V Liu; Panos Georgopoulos
Journal:  Environ Health Perspect       Date:  2010-03       Impact factor: 9.031

8.  A generalized physiologically-based toxicokinetic modeling system for chemical mixtures containing metals.

Authors:  Alan F Sasso; Sastry S Isukapalli; Panos G Georgopoulos
Journal:  Theor Biol Med Model       Date:  2010-06-02       Impact factor: 2.432

Review 9.  Using national and local extant data to characterize environmental exposures in the national children's study: Queens County, New York.

Authors:  Paul J Lioy; Sastry S Isukapalli; Leonardo Trasande; Lorna Thorpe; Michael Dellarco; Clifford Weisel; Panos G Georgopoulos; Christopher Yung; Shahnaz Alimokhtari; Margot Brown; Philip J Landrigan
Journal:  Environ Health Perspect       Date:  2009-06-15       Impact factor: 9.031

10.  Exposure as part of a systems approach for assessing risk.

Authors:  Linda S Sheldon; Elaine A Cohen Hubal
Journal:  Environ Health Perspect       Date:  2009-04-08       Impact factor: 9.031

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