Urinary Pesticide Levels in Children and Adolescents Residing in Two Agricultural Communities in Mexico
Abstract
1. Introduction
2. Material and Methods
3. Results
4. Discussion
5. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
- Sierra-Diaz, E.; Celis-de la Rosa, A.J.; Lozano-Kasten, F.; Trasande, L.; Peregrina-Lucano, A.A.; Sandoval-Pinto, E.; Gonzalez-Chavez, H. Urinary Pesticide Levels in Children and Adolescents Residing in Two Agricultural Communities in Mexico. Int. J. Environ. Res. Public Health 2019, 16, 15. [Google Scholar] [CrossRef]
- Wang, B.S.; Chen, L.; Li, X.T.; Xu, M.; Zhu, B.L.; Zhang, J. Acute Pesticide Poisoning in Jiangsu Province, China, from 2006 to 2015. Biomed. Environ. Sci. 2017, 30, 695–700. [Google Scholar] [CrossRef] [PubMed]
- Meza-Montenegro, M.M.; Valenzuela-Quintanar, A.I.; Balderas-Cortés, J.J.; Yañez-Estrada, L.; Gutiérrez-Coronado, M.L.; Cuevas-Robles, A.; Gandolfi, A.J. Exposure assessment of organochlorine pesticides, arsenic, and lead in children from the major agricultural areas in Sonora, Mexico. Arch. Environ. Contam. Toxicol. 2013, 64, 519–527. [Google Scholar] [CrossRef] [PubMed]
- Biblioteca Jalisco. Available online: http://seplan.app.jalisco.gob.mx/biblioteca/panel/index (accessed on 15 January 2019).
- Gobierno. Secretaría de Agricultura y Desarrollo Rural. Available online: https://www.gob.mx/sader (accessed on 15 January 2019).
- Bradman, A.; Quirós-Alcalá, L.; Castorina, R.; Aguilar Schall, R.; Camacho, J.; Holland, N.T.; Barr, D.B.; Eskenazi, B. Effect of Organic Diet Intervention on Pesticide Exposures in Young Children Living in Low-Income Urban and Agricultural Communities. Environ. Health Perspect. 2015, 123, 1086–1093. [Google Scholar] [CrossRef] [PubMed]
- Lozano-Kasten, F.; Sierra-Diaz, E.; de Jesus Celis-de la Rosa, A.; Margarita Soto Gutiérrez, M.; Aarón Peregrina Lucano, A.; Research Group on Social and Environmental Determinants in Childhood. Prevalence of Albuminuria in Children Living in a Rural Agricultural and Fishing Subsistence Community in Lake Chapala, Mexico. Int. J. Environ. Res. Public Health 2017, 14, 1577. [Google Scholar] [CrossRef] [PubMed]
- Schaner, A.; Konecny, J.; Luckey, L.; Hickes, H. Determination of Chlorinated Acid Herbicides in Vegetation and Soil by Liquid Chromatography/Electrospray-Tandem Mass Spectrometry. 2007. Available online: https://www.ingentaconnect.com/content/aoac/jaoac/2007/00000090/00000005/art00024 (accessed on 15 January 2019).
- Arora, R.; Chang, E.; Li, G.Q.; Raman, L.P. LC-MS-MS analysis of multi-residue pesticides in vegetables using liquid-liquid extraction and pursuit® XRs C18 HPLC columns. LC-GC North America 2007, 25, 38–39. [Google Scholar]
- Ortíz, I.; Avila-Chávez, M.A.; Torres, L.G. Plaguicidas en México: Usos, riesgos y marco regulatorio. Rev. Latinoam Biotecnol. Ambient Algal. 2013, 4, 1–21. [Google Scholar] [CrossRef]
- Jurewicz, J.; Hanke, W. Prenatal and childhood exposure to pesticides and neurobehavioral development: Review of epidemiological studies. Int. J. Occup. Med. Environ. Health 2008, 21, 121–132. [Google Scholar] [CrossRef] [PubMed]
- Matyslak, M.; Kuuszewski, M.; Jodlowska-Jedrych, B.; Kapka-Skrzypczak, L. Effect of prenatal exposure to pesticides on childrens’s health. J. Environ. Pathol. Toxicol. Oncol. 2016, 35, 375–386. [Google Scholar] [CrossRef] [PubMed]
- Rendon-von Osten, J.; Dzul-Caamal, R. Glyphosate Residues in Groundwater, Drinking Water and Urine of Subsistence Farmers from Intensive Agriculture Localities: A Survey in Hopelchén, Campeche, Mexico. Int. J. Environ. Res. Public Health 2017, 14, 595. [Google Scholar] [CrossRef] [PubMed]
- Mcculligh, C.C. Alcantarilla del progreso: Industria y Estado en la contaminación del río Santiago en Jalisco. 2017. Available online: https://www.repositorionacionalcti.mx/recurso/oai:ciesas.repositorioinstitucional.mx:1015/470 (accessed on 15 January 2019).
- Lu, C.; Barr, D.; Pearson, M.; Waller, L. Dietary Intake and Its Contribution to Longitudinal Organophosphorus Pesticide Exposure in Urban/Suburban Children. Eviron. Health Perspect. 2008, 116, 537–542. [Google Scholar] [CrossRef] [PubMed]
- Kwong, T.C. Organophosphate pesticides: Biochemistry and clinical toxicology. Ther. Drug Monit. 2002, 24, 144–149. [Google Scholar] [CrossRef] [PubMed]
- Hernandez, A.; Hanssen, A. Uso de plaguicidas en dos zonas agrícolas de México y evaluación de la contaminación de agua y sedimentos. Rev. Int. Contam. Ambie. 2011, 27, 115–127. [Google Scholar]
Name | IUPAC ID | PubChem CID | Agrochemical Category |
---|---|---|---|
Acetochlor | 2-chloro-N-(ethoxymethyl)-N- (2-ethyl-6-methylphenyl)acetamide | 1988 | Herbicide |
Atrazine | 6-chloro-4-N-ethyl-2-N-propan-2-yl-1,3,5-triazine-2,4-diamine | 2256 | Herbicide |
Carbendazim | methyl N-(1H-benzimidazol-2-yl)carbamate | 25429 | Fungicide |
Carbofuran | (2,2-dimethyl-3H-1-benzofuran-7-yl) N-methylcarbamate | 2566 | Insecticide, Nematicide, Acaricide |
Cyhalothrin | [cyano-(3-phenoxyphenyl)methyl] 3-[(Z)-2-chloro-3,3,3-trifluoroprop-1-enyl]-2,2-dimethylcyclopropane-1-carboxylate | 5281873 | Insecticide |
Diazinon | O,O-Diethyl O-[4-methyl-6-(propan-2-yl) pyrimidin-2-yl] phosphorothioate | 3017 | Insecticide, Acaricide |
Dimethoate | 2-dimethoxyphosphinothioylsulfanyl-N-methylacetamide | 3082 | Insecticide, Acaricide |
Emamectin | 4″-Deoxy-4″-epi-methylamino-avermectin B1; Epi-methylamino-4″-deoxy-avermectin | 11549937 | Insecticide |
Enilconazole (imazalil) | 1-[2-(2,4-dichlorophenyl)-2-prop-2-enoxyethyl]imidazole | 37175 | Fungicide |
Glyphosate | 2-(phosphonomethylamino)acetic acid | 3496 | Herbicide |
Malathion | diethyl 2-dimethoxyphosphinothioylsulfanylbutanedioate | 4004 | Insecticide, Acaricide |
Methomyl | methyl (1E)-N-(methylcarbamoyloxy)ethanimidothioate | 5353758 | Insecticide |
Metoxuron | 3-(3-chloro-4-methoxyphenyl)-1,1-dimethylurea | 29863 | Herbicide |
Molinate | S-ethyl azepane-1-carbothioate | 16653 | Herbicide |
Pyraclostrobin | Methyl N-[2-[[1-(4-chlorophenyl) pyrazol-3-yl]oxymethyl]phenyl]-N-methoxycarbamate | 6422843 | Fungicide, plant growth regulator |
Thiabendazole | 4-(1H-benzimidazol-2-yl)-1,3-thiazole | 5430 | Fungicide |
Mass spectrometer conditions | ||||
Electrospray Interface Condition | ||||
Gas emperature | 350 °C | |||
Gas flow | 12 L/min | |||
Nebulizer | 25 psi | |||
Capillary | +4000 | −4000 | ||
Compound name | Precursor Ion | Product Ion | Fragmentor | Polarity |
L-Cyhalotrin (225.1) | 467.1 | 225.1 | 80 | Positive |
Meclizina (201.1) | 391.2 | 201.1 | 90 | Positive |
Pyraclostrobin (163) | 388 | 163 | 120 | Positive |
Malation (99) | 331 | 99 | 80 | Positive |
Clorpyrifos (200) | 325 | 200 | 30 | Positive |
Oxandrolona (289.2) | 307.2 | 289.2 | 100 | Positive |
Oxandrolona (271.2) | 307.2 | 271.2 | 100 | Positive |
Oxandrolona (229.1) | 307.2 | 229.1 | 100 | Positive |
Diazinon (153) | 305 | 153 | 160 | Positive |
Imazalil (159) | 297 | 159 | 160 | Positive |
Paration (264) | 292 | 264 | 90 | Positive |
Paration (236) | 292 | 236 | 90 | Positive |
Acetoclor (224.2) | 270.1 | 224.2 | 60 | Positive |
Acetoclor (148.4) | 270.1 | 148.4 | 60 | Positive |
Picloram (222.9) | 240.9 | 222.9 | 90 | Positive |
Picloram (194.9) | 240.9 | 194.9 | 90 | Positive |
Dimethoate (171) | 230 | 171 | 80 | Positive |
Metoxuron (72.1) | 229.1 | 72.1 | 93 | Positive |
Ametryn (186) | 228.1 | 186 | 120 | Positive |
Ametryn (96) | 228.1 | 96 | 120 | Positive |
Carbofuran (123) | 222 | 123 | 120 | Positive |
Atrazine (132) | 216 | 132 | 120 | Positive |
Thiabendazole (131) | 202 | 131 | 120 | Positive |
Carbendazim (160) | 192.1 | 160 | 110 | Positive |
Molinate (55.1) | 188.1 | 55.1 | 78 | Positive |
Methomyl (106) | 163.1 | 106 | 30 | Positive |
Methomyl (88.1) | 163.1 | 88.1 | 30 | Positive |
Methomyl (65) | 163.1 | 65 | 30 | Positive |
Emamectina (158.1) | 887.1 | 158.1 | 60 | Positive |
Glyphosate (149.9) | 168 | 149.9 | 80 | Negative |
Glyphosate (124.2) | 168 | 124.2 | 80 | Negative |
2,4-D (161.1) | 219 | 161.1 | 50 | Negative |
Variable | Agua Caliente (n = 192) | Ahuacapán (n = 89) |
---|---|---|
Gender | ||
Female | 84 (43.8%) | 40 (44.9%) |
Male | 108 (56.3%) | 49 (55.1%) |
Age (years) | 9.40 (SD 2.52) | 9.31 (SD 2.05) |
Age groups | ||
5–8 y | 78 (40.6%) | 49 (55.1%) |
9–11 y | 67 (34.9%) | 34 (38.21%) |
12–15 y | 47 (24.5%) | 6 (6.7%) |
Weight (kilograms) | 29.39 (SD 10.06) | 32.27 (SD 11.73) |
Height (centimeters) | 131.58 (SD 14.12) | 132.94 (SD12.97) |
Body mass index (k/m2) | 16.46 (SD 2.44) | 17.72 (SD 3.66) |
Pesticide | Agua Caliente | Ahuacapán | |
---|---|---|---|
n (%) | n (%) | p (Fisher Test) | |
Mean ng/mL (SD) | Mean ng/mL (SD) | p (Mann–Whitney) | |
Acetochlor | 161 (83.85) | 44 (49.43) | <0.01 |
0.008 (0.0867) | 0.001 (0.0017) | 0.04 | |
Atrazine | 22 (11.45) | 22 (24.71) | <0.01 |
0.016 (0.0486) | 0.043 (0.0930) | 0.06 | |
Carbendazim | 29 (15.10) | 52 (41.57) | <0.01 |
0.141 (0.4192) | 0.330 (0.5040) | <0.01 | |
Carbofuran | 1 (0.52) | 0 | NA |
0.246 | NA | ||
Cyhalothrin | 138 (71.87) | 45 (50.56) | <0.01 |
0.083 (0.0823) | 0.080 (0.0855) | 0.52 | |
Diazinon | 29 (15.10) | 20 (22.47) | 0.09 |
0.007 (0.0199) | 0.008 ± 0.0180 | 0.41 | |
Dimethoate | 179 (93.22) | 44 (49.43) | <0.01 |
0.146 (0.1834) | 0.169 (0.2299) | 0.03 | |
Emamectin | 6 (3.12) | 9 (10.11) | 0.02 |
0.006 (0.0339) | 0.019 (0.0582) | 0.34 | |
Enilconazole | 177 (92.18) | 29 (32.58) | <0.01 |
1.582 (5.6623) | 0.069 (0.1023) | <0.01 | |
Glyphosate | 140 (72.91) | 89 (100) | <0.01 |
0.363 (0.3210) | 0.6060 (0.5435) | <0.01 | |
Malathion | 191 (99.47) | 55 (61.79) | <0.01 |
0.681 (0.6431) | 0.177 (0.1730) | <0.01 | |
Methomyl | 46 (23.95) | 0 | <0.01 |
0.016 (0.0292) | <0.01 | ||
Metoxuron | 188 (97.91) | 50 (56.17) | <0.01 |
0.038 (0.0403) | 0.037 (0.0414) | 0.10 | |
Molinate | 79 (41.14) | 55 (61.79) | <0.01 |
0.191 (0.3698) | 0.273 (0.4240) | <0.01 | |
Pyraclostrobin | 62 (32.29) | 37 (41.57) | 0.08 |
0.049 (0.2331) | 0.042 (0.0509) | 0.18 | |
Thiabendazole | 29 (15.10) | 24 (26.96) | <0.01 |
0.007 (0.0511) | 0.002 (0.0046) | 0.12 |
© 2019 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
Share and Cite
Sierra-Diaz, E.; Celis-de la Rosa, A.d.J.; Lozano-Kasten, F.; Trasande, L.; Peregrina-Lucano, A.A.; Sandoval-Pinto, E.; Gonzalez-Chavez, H. Urinary Pesticide Levels in Children and Adolescents Residing in Two Agricultural Communities in Mexico. Int. J. Environ. Res. Public Health 2019, 16, 562. https://doi.org/10.3390/ijerph16040562
Sierra-Diaz E, Celis-de la Rosa AdJ, Lozano-Kasten F, Trasande L, Peregrina-Lucano AA, Sandoval-Pinto E, Gonzalez-Chavez H. Urinary Pesticide Levels in Children and Adolescents Residing in Two Agricultural Communities in Mexico. International Journal of Environmental Research and Public Health. 2019; 16(4):562. https://doi.org/10.3390/ijerph16040562
Chicago/Turabian StyleSierra-Diaz, Erick, Alfredo de Jesus Celis-de la Rosa, Felipe Lozano-Kasten, Leonardo Trasande, Alejandro Aarón Peregrina-Lucano, Elena Sandoval-Pinto, and Humberto Gonzalez-Chavez. 2019. "Urinary Pesticide Levels in Children and Adolescents Residing in Two Agricultural Communities in Mexico" International Journal of Environmental Research and Public Health 16, no. 4: 562. https://doi.org/10.3390/ijerph16040562
APA StyleSierra-Diaz, E., Celis-de la Rosa, A. d. J., Lozano-Kasten, F., Trasande, L., Peregrina-Lucano, A. A., Sandoval-Pinto, E., & Gonzalez-Chavez, H. (2019). Urinary Pesticide Levels in Children and Adolescents Residing in Two Agricultural Communities in Mexico. International Journal of Environmental Research and Public Health, 16(4), 562. https://doi.org/10.3390/ijerph16040562