Literature DB >> 19888312

Assessment of a pesticide exposure intensity algorithm in the agricultural health study.

Kent W Thomas1, Mustafa Dosemeci, Joseph B Coble, Jane A Hoppin, Linda S Sheldon, Guadalupe Chapa, Carry W Croghan, Paul A Jones, Charles E Knott, Charles F Lynch, Dale P Sandler, Aaron E Blair, Michael C Alavanja.   

Abstract

The accuracy of the exposure assessment is a critical factor in epidemiological investigations of pesticide exposures and health in agricultural populations. However, few studies have been conducted to evaluate questionnaire-based exposure metrics. The Agricultural Health Study (AHS) is a prospective cohort study of pesticide applicators who provided detailed questionnaire information on their use of specific pesticides. A field study was conducted for a subset of the applicators enrolled in the AHS to assess a pesticide exposure algorithm through comparison of algorithm intensity scores with measured exposures. Pre- and post-application urinary biomarker measurements were made for 2,4-D (n=69) and chlorpyrifos (n=17) applicators. Dermal patch, hand wipe, and personal air samples were also collected. Intensity scores were calculated using information from technician observations and an interviewer-administered questionnaire. Correlations between observer and questionnaire intensity scores were high (Spearman's r=0.92 and 0.84 for 2,4-D and chlorpyrifos, respectively). Intensity scores from questionnaires for individual applications were significantly correlated with post-application urinary concentrations for both 2,4-D (r=0.42, P<0.001) and chlorpyrifos (r=0.53, P=0.035) applicators. Significant correlations were also found between intensity scores and estimated hand loading, estimated body loading, and air concentrations for 2,4-D applicators (r-values 0.28-0.50, P-values<0.025). Correlations between intensity scores and dermal and air measures were generally lower for chlorpyrifos applicators using granular products. A linear regression model indicated that the algorithm factors for individual applications explained 24% of the variability in post-application urinary 2,4-D concentration, which increased to 60% when the pre-application urine concentration was included. The results of the measurements support the use of the algorithm for estimating questionnaire-based exposure intensities in the AHS for liquid pesticide products. Refinement of the algorithm may be possible using the results from this and other measurement studies.

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Year:  2009        PMID: 19888312      PMCID: PMC2935660          DOI: 10.1038/jes.2009.54

Source DB:  PubMed          Journal:  J Expo Sci Environ Epidemiol        ISSN: 1559-0631            Impact factor:   5.563


  27 in total

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2.  A quantitative approach for estimating exposure to pesticides in the Agricultural Health Study.

Authors:  Mustafa Dosemeci; Michael C R Alavanja; Andrew S Rowland; David Mage; Shelia Hoar Zahm; Nathaniel Rothman; Jay H Lubin; Jane A Hoppin; Dale P Sandler; Aaron Blair
Journal:  Ann Occup Hyg       Date:  2002-03

3.  Use of a crop and job specific exposure matrix for estimating cumulative exposure to triazine herbicides among females in a case-control study in the Central Valley of California.

Authors:  H A Young; P K Mills; D Riordan; R Cress
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Authors:  Hans Kromhout; Dick Heederik
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5.  Experts' assessment of probability and level of pesticide exposure in agricultural workers.

Authors:  A M García; E Orts; V Esteban; J L Porcuna
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6.  Geographically based investigation of prostate cancer mortality in four U.S. Northern Plain states.

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7.  Development of an agricultural job-exposure matrix for British Columbia, Canada.

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Authors:  K Muir; S Rattanamongkolgul; M Smallman-Raynor; M Thomas; S Downer; C Jenkinson
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9.  Mortality from ischemic heart disease and diabetes mellitus (type 2) in four U.S. wheat-producing states: a hypothesis-generating study.

Authors:  Dina M Schreinemachers
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10.  Identifying populations potentially exposed to agricultural pesticides using remote sensing and a Geographic Information System.

Authors:  M H Ward; J R Nuckols; S J Weigel; S K Maxwell; K P Cantor; R S Miller
Journal:  Environ Health Perspect       Date:  2000-01       Impact factor: 9.031

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  30 in total

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Authors:  Catherine C Lerro; Laura E Beane Freeman; Curt T DellaValle; Muhammad G Kibriya; Briseis Aschebrook-Kilfoy; Farzana Jasmine; Stella Koutros; Christine G Parks; Dale P Sandler; Michael C R Alavanja; Jonathan N Hofmann; Mary H Ward
Journal:  Occup Environ Med       Date:  2017-08-03       Impact factor: 4.402

2.  Pesticide exposure and inherited variants in vitamin d pathway genes in relation to prostate cancer.

Authors:  Sara Karami; Gabriella Andreotti; Stella Koutros; Kathryn Hughes Barry; Lee E Moore; Summer Han; Jane A Hoppin; Dale P Sandler; Jay H Lubin; Laurie A Burdette; Jeffrey Yuenger; Meredith Yeager; Laura E Beane Freeman; Aaron Blair; Michael C R Alavanja
Journal:  Cancer Epidemiol Biomarkers Prev       Date:  2013-07-05       Impact factor: 4.254

3.  Determinants of captan air and dermal exposures among orchard pesticide applicators in the Agricultural Health Study.

Authors:  Cynthia J Hines; James A Deddens; Joseph Coble; Freya Kamel; Michael C R Alavanja
Journal:  Ann Occup Hyg       Date:  2011-03-22

4.  Genetic variation in nucleotide excision repair pathway genes, pesticide exposure and prostate cancer risk.

Authors:  Kathryn Hughes Barry; Stella Koutros; Gabriella Andreotti; Dale P Sandler; Laurie A Burdette; Meredith Yeager; Laura E Beane Freeman; Jay H Lubin; Xiaomei Ma; Tongzhang Zheng; Michael C R Alavanja; Sonja I Berndt
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5.  Characterization of inhalable endotoxin, glucan, and dust exposures in Iowa farmers.

Authors:  Jean-François Sauvé; Sarah J Locke; Pabitra R Josse; Emma M Stapleton; Nervana Metwali; Ralph W Altmaier; Gabriella Andreotti; Peter S Thorne; Jonathan N Hofmann; Laura E Beane Freeman; Melissa C Friesen
Journal:  Int J Hyg Environ Health       Date:  2020-04-17       Impact factor: 5.840

Review 6.  A weight-of-evidence review of colorectal cancer in pesticide applicators: the agricultural health study and other epidemiologic studies.

Authors:  Dominik D Alexander; Douglas L Weed; Pamela J Mink; Meghan E Mitchell
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7.  Use of acetochlor and cancer incidence in the Agricultural Health Study.

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8.  Impact of pesticide exposure misclassification on estimates of relative risks in the Agricultural Health Study.

Authors:  Aaron Blair; Kent Thomas; Joseph Coble; Dale P Sandler; Cynthia J Hines; Charles F Lynch; Charles Knott; Mark P Purdue; Shelia Hoar Zahm; Michael C R Alavanja; Mustafa Dosemeci; Freya Kamel; Jane A Hoppin; Laura Beane Freeman; Jay H Lubin
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9.  Longitudinal assessment of occupational determinants of chlorpyrifos exposure in adolescent pesticide workers in Egypt.

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Journal:  Int J Hyg Environ Health       Date:  2017-09-18       Impact factor: 5.840

10.  Occupational exposure to terbufos and the incidence of cancer in the Agricultural Health Study.

Authors:  Matthew R Bonner; Brent A Williams; Jennifer A Rusiecki; Aaron Blair; Laura E Beane Freeman; Jane A Hoppin; Mustafa Dosemeci; Jay Lubin; Dale P Sandler; Michael C R Alavanja
Journal:  Cancer Causes Control       Date:  2010-02-13       Impact factor: 2.506

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