| Literature DB >> 16759991 |
Mary H Ward1, Jay Lubin, James Giglierano, Joanne S Colt, Calvin Wolter, Nural Bekiroglu, David Camann, Patricia Hartge, John R Nuckols.
Abstract
Rural residents can be exposed to agricultural pesticides through the proximity of their homes to crop fields. Previously, we developed a method to create historical crop maps using a geographic information system. The aim of the present study was to determine whether crop maps are useful for predicting levels of crop herbicides in carpet dust samples from residences. From homes of participants in a case-control study of non-Hodgkin lymphoma in Iowa (1998-2000), we collected vacuum cleaner dust and measured 14 herbicides with high use on corn and soybeans in Iowa. Of 112 homes, 58% of residences had crops within 500 m of their home, an intermediate distance for primary drift from aerial and ground applications. Detection rates for herbicides ranged from 0% for metribuzin and cyanazine to 95% for 2,4-dichlorophenoxyacetic acid. Six herbicides used almost exclusively in agriculture were detected in 28% of homes. Detections and concentrations were highest in homes with an active farmer. Increasing acreage of corn and soybean fields within 750 m of homes was associated with significantly elevated odds of detecting agricultural herbicides compared with homes with no crops within 750 m (adjusted odds ratio per 10 acres = 1.06; 95% confidence interval, 1.02-1.11). Herbicide concentrations also increased significantly with increasing acreage within 750 m. We evaluated the distance of crop fields from the home at < 100, 101-250, 251-500, and 501-750 m. Including the crop buffer distance parameters in the model did not significantly improve the fit compared with a model with total acres within 750 m. Our results indicate that crop maps may be a useful method for estimating levels of herbicides in homes from nearby crop fields.Entities:
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Year: 2006 PMID: 16759991 PMCID: PMC1480526 DOI: 10.1289/ehp.8770
Source DB: PubMed Journal: Environ Health Perspect ISSN: 0091-6765 Impact factor: 9.031
Figure 1Satellite image boundaries and approximate residence locations from a case–control study of NHL in Iowa, USA.
Frequency of detection, median detected concentrations (ng/g), geometric mean, and geometric SD for 14 herbicides measured in house dust samples from Iowa residences.
| Herbicide | Percent detected | Median detected concentration (range) | Geometric mean | Geometric SD |
|---|---|---|---|---|
| 2,4-D | 94.6 | 1244.9 (85.2–126,000) | 1035.0 | 4.2 |
| Dicamba | 28.8 | 179.5 (75.4–908.0) | 30.1 | 5.0 |
| Metolachlor | 21.4 | 129.5 (27.8–3180.0) | 3.0 | 16.8 |
| Trifluralin | 15.2 | 51.9 (24.6–3650.0) | 1.5 | 17.0 |
| Pendimethalin | 11.6 | 215.0 (141–1650.0) | 17.5 | 6.1 |
| Atrazine | 8.0 | 510.0 (59.4–4720.0) | 0.44 | 41.4 |
| Bentazon | 8.1 | 225.0 (88.5–855.6) | 5.6 | 6.4 |
| Acetochlor | 8.0 | 127.0 (52.7–4120.0) | 16.5 | 3.1 |
| Fluazifop- | 6.2 | 71.3 (29.1–304.0) | 2.3 | 5.9 |
| Alachlor | 6.2 | 49.6 (28.4–394.0) | 3.2 | 4.3 |
| All herbicides | 94.6 | 1444.2 (173.3–126,190) | 1398.6 | 3.5 |
| Agricultural herbicides | 28.0 | 238.3 (34.7–10244.0) | 72.5 | 3.5 |
| Herbicides with long-term use | 43.2 | 193.5 (31.6–6469.0) | 74.7 | 4.5 |
Detection limits (ng/g): acetochlor, 53; alachlor, 28; atrazine, 59; bentazon, 88; dicamba, 75; fluazifop-p-butyl, 29; metolachlor, 28; pendimethalin, 141; trifluralin, 24; 2,4-D, 85.
Geometric means and SDs were derived from fitted log-normal models.
Based on 111 samples.
Herbicides with primarily agricultural use: acetochlor, alachor, atrazine, bentazon, fluazifop-p-butyl, metolachlor.
Herbicides used on ≥15% of corn and/or soybean acreage in Iowa in 1985, 1990, and 1995: atrazine, dicamba, metolachlor, trifluralin.
Frequency of detections, geometric mean, and geometric SD for agricultural herbicides measured in house dust, by agricultural work status, residence location, and acres of crops near the homes.
| No. (%) | Percent of homes with detections | Geometric mean (ng/g) (geometric SD) | |
|---|---|---|---|
| Agricultural work | |||
| Never | 79 (71) | 16 | 111.5 (2.5) |
| Current | 13 (12) | 85 | 366.0 (4.6) |
| Former | 19 (17) | 37 | 121.9 (2.5) |
| Residence in town | |||
| Yes | 80 (72) | 15 | 101.7 (2.2) |
| No | 31 (28) | 61 | 245.7 (4.2) |
| Acres of corn and soybeans within 750 m of home | |||
| 0 | 29 (26) | 14 | 45.2 (2.0) |
| 1–200 | 58 (52) | 17 | 63.1 (3.2) |
| 201–300 | 8 (7) | 62 | 143.3 (2.4) |
| ≥301 | 16 (14) | 75 | 200.3 (6.3) |
ORs and 95% CIs of detecting one or more herbicides in relation to the total acreage of corn and soybeans within 750 m of residences.
| Acres of corn and soybeans within 750 m | |||||||||
|---|---|---|---|---|---|---|---|---|---|
| No crops within 750 m | 1–200 acres
| 201–300 acres
| > 300 acres
| ||||||
| Herbicide | Detect/ND | OR | Detect/ND | OR (95% CI) | Detect/ND | OR (95% CI) | Detect/ND | OR (95% CI) | OR (95% CI) per 10 acres |
| Agricultural herbicides | |||||||||
| Crude OR | 5/24 | 1.0 | 10/48 | 1.3 (0.4–4.5) | 5/3 | 10.4 (1.8–61.7) | 12/4 | 18.7 (3.9–88.1) | 1.09 (1.05–1.13) |
| Adjusted for agricultural jobs | 1.0 | 1.2 (0.3–4.4) | 7.2 (1.1–49.3) | 7.4 (1.3–41.3) | 1.06 (1.02–1.11) | ||||
| Long-term–use herbicides | |||||||||
| Crude OR | 7/22 | 1.0 | 21/37 | 1.8 (0.7–4.9) | 5/3 | 5.2 (1.0–27.7) | 15/1 | 47.1 (5.2–423) | 1.08 (1.04–1.12) |
| Adjusted for agricultural jobs | 1.0 | 1.7 (0.6–5.1) | 3.6 (0.6–22.9) | 19.9 (2.0–201) | 1.05 (1.01–1.10) | ||||
Average acreage in 1998–2000.
Reference group.
Number of homes where herbicides were detected/number of homes where herbicides were not detected (ND).
Exponentiated parameter estimates for agricultural herbicides and long-term–use herbicides in carpet dust (ng/g) in relation to acres of crops anywhere within 750 m and within specific buffer regions from home (n = 111 samples for each model).
| Model | Parameter | Exp(β) | 95% CI |
|---|---|---|---|
| Agricultural herbicides | |||
| Model A | Intercept | 64.02 | 47.31–86.63 |
| Model B | Intercept | 38.44 | 24.88–59.37 |
| Per 10 acres: < 750 m | 1.05 | 1.03–1.07 | |
| Model C | Intercept | 40.90 | 24.85–67.32 |
| Per acre: < 100 m | 0.99 | 0.58–1.68 | |
| Per acre: 100–250 m | 1.09 | 0.98–1.21 | |
| Per acre: 250–500 m | 0.98 | 0.95–1.01 | |
| Per acre: 500–750 m | 1.01 | 1.00–1.02 | |
| Long-term–use herbicides | |||
| Model A | Intercept | 76.90 | 55.85–105.87 |
| Model B | Intercept | 36.86 | 24.70–55.01 |
| Per 10 acres: < 750 m | 1.06 | 1.04–1.08 | |
| Model C | Intercept | 39.66 | 25.94–60.62 |
| Per acre: < 100 m | 0.77 | 0.43–1.40 | |
| Per acre: 100–250 m | 1.12 | 1.00–1.27 | |
| Per acre: 250–500 m | 0.98 | 0.95–1.02 | |
| Per acre: 500–750 m | 1.01 | 1.00–1.02 | |