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Review Article

Pesticide regulations and their malpractice implications on food and environment safety

, , & | (Reviewing editor)
Article: 1601544 | Received 01 Feb 2019, Accepted 25 Mar 2019, Published online: 14 Apr 2019

References

  • Abdelraheem, E. M. H., Hassan, S. M., Arief, M. M. H., & Mohammad, S. G. (2015). Validation of quantitative method for azoxystrobin residues in green beans and peas. Food Chemistry, 182, 246–15. doi:10.1016/J.FOODCHEM.2015.02.106
  • Aliferis, K. A., & Jabaji, S. (2011). Metabolomics – A robust bioanalytical approach for the discovery of the modes-of-action of pesticides: A review. Pesticide Biochemistry and Physiology, 100(2), 105–117. doi:10.1016/J.PESTBP.2011.03.004
  • Alldrick, A. J. (2017). Food safety aspects of grain and cereal product quality. In Cereal grains (pp. 393–424). Elsevier. doi:10.1016/B978-0-08-100719-8.00015-2
  • Ambrus, Á., & Hamilton, D. (2017). Food safety assessment of pesticide residues. Europe: World Scientific. doi:10.1142/q0050
  • Antonini, C., & Argilés-Bosch, J. M. (2017). Productivity and environmental costs from intensification of farming. A panel data analysis across EU regions. Journal of Cleaner Production, 140, 796–803. doi:10.1016/J.JCLEPRO.2016.04.009
  • Arora, N. K., Verma, M., Prakash, J., & Mishra, J. (2016). Regulation of biopesticides: Global concerns and policies. In Bioformulations: For sustainable agriculture (pp. 283–299). New Delhi: Springer India. doi:10.1007/978-81-322-2779-3_16
  • Baréa, P., Barbosa, V. A., Bidóia, D. L., de Paula, J. C., Stefanello, T. F., Da Costa, W. F., et al. (2018). Synthesis, antileishmanial activity and mechanism of action studies of novel β-carboline-1,3,5-triazine hybrids. European Journal of Medicinal Chemistry, 150, 579–590. doi:10.1016/J.EJMECH.2018.03.014
  • Bedi, J. S., Gill, J. P. S., Aulakh, R. S., & Kaur, P. (2015). Pesticide residues in bovine milk in Punjab, India: Spatial variation and risk assessment to human health. Archives of Environmental Contamination and Toxicology, 69(2), 230–240. doi:10.1007/s00244-015-0163-6
  • Bedi, J. S., Singh, V., Gupta, A., Gill, J. P. S., & Aulakh, R. S. (2018). Persistent organic pollutants (POPs) in fresh water farm fish species from Punjab (India) and evaluation of their dietary intake for human risk assessment. Human and Ecological Risk Assessment: an International Journal, 1–14. doi:10.1080/10807039.2017.1421453
  • Bednarska, A. J., Choczyński, M., Laskowski, R., & Walczak, M. (2017). Combined effects of chlorpyriphos, copper and temperature on acetylcholinesterase activity and toxicokinetics of the chemicals in the earthworm Eisenia fetida. Environmental Pollution, 220, 567–576. doi:10.1016/J.ENVPOL.2016.10.004
  • Benbrook, C. M. (2016). Trends in glyphosate herbicide use in the United States and globally. Environmental Sciences Europe, 28(1), 3. doi:10.1186/s12302-016-0070-0
  • Bernhardt, E. S., Rosi, E. J., & Gessner, M. O. (2017). Synthetic chemicals as agents of global change. Frontiers in Ecology and the Environment, 15(2), 84–90. doi:10.1002/fee.1450
  • Bhandari, G., Atreya, K., Yang, X., Fan, L., & Geissen, V. (2018). Factors affecting pesticide safety behaviour: The perceptions of Nepalese farmers and retailers. Science of the Total Environment, 631–632, 1560–1571. doi:10.1016/J.SCITOTENV.2018.03.144
  • Biondi, A., Desneux, N., Siscaro, G., & Zappalà, L. (2012). Using organic-certified rather than synthetic pesticides may not be safer for biological control agents: Selectivity and side effects of 14 pesticides on the predator Orius laevigatus. Chemosphere, 87(7), 803–812. doi:10.1016/J.CHEMOSPHERE.2011.12.082
  • Bonmatin, J.-M., Giorio, C., Girolami, V., Goulson, D., Kreutzweiser, D. P., Krupke, C., … Tapparo, A. (2015). Environmental fate and exposure; neonicotinoids and fipronil. Environmental Science and Pollution Research, 22(1), 35–67. doi:10.1007/s11356-014-3332-7
  • Botitsi, H., Tsipi, D., & Economou, A. (2017). Current legislation on pesticides. In Applications in high resolution mass spectrometry (pp. 83–130). Elsevier. doi:10.1016/B978-0-12-809464-8.00004-X
  • Brancato, A., Brocca, D., De Lentdecker, C., Erdos, Z., Ferreira, L., Greco, L., et al. (2018). Setting of import tolerances for flubendiamide in apricots, peaches, nectarines, plums and soya beans. EFSA Journal, 16, 1. doi:10.2903/j.efsa.2018.5128
  • Buah-Kwofie, A., Humphries, M. S., & Pillay, L. (2018). Bioaccumulation and risk assessment of organochlorine pesticides in fish from a global biodiversity hotspot: ISimangaliso Wetland Park, South Africa. Science of the Total Environment, 621, 273–281. doi:10.1016/J.SCITOTENV.2017.11.212
  • Buckingham, S. D., Ihara, M., Sattelle, D. B., & Matsuda, K. (2017). Mechanisms of action, resistance and toxicity of insecticides targeting GABA receptors. Current Medicinal Chemistry, 24, 27. doi:10.2174/0929867324666170613075736
  • Buijs, J., van der Meulen, B., & Jiao, L. (2018). China’s food safety law. Legal systematic analysis of the 2015 food safety law of the People’s Republic of China (No. 2018). In European institute for food law. Wageningen.
  • Cantrell, C. L., Dayan, F. E., & Duke, S. O. (2012). Natural Products As Sources for New Pesticides. Journal of Natural Products, 75(6), 1231–1242. doi:10.1021/np300024u
  • Clark, M., & Tilman, D. (2017). Comparative analysis of environmental impacts of agricultural production systems, agricultural input efficiency, and food choice. Environmental Research Letters, 12(6), 064016. doi:10.1088/1748-9326/aa6cd5
  • Cordova, D., Benner, E. A., Schroeder, M. E., Holyoke, C. W., Zhang, W., Pahutski, T. F., et al. (2016). Mode of action of triflumezopyrim: A novel mesoionic insecticide which inhibits the nicotinic acetylcholine receptor. Insect Biochemistry and Molecular Biology, 74, 32–41. doi:10.1016/J.IBMB.2016.04.008
  • Costa, M. C., Goumperis, T., Andersson, W., Badiola, J., Ooms, W., Pongolini, S., et al. (2017). Risk identification in food safety: Strategy and outcomes of the EFSA emerging risks exchange network (EREN), 2010–2014. Food Control, 73, 255–264. doi:10.1016/J.FOODCONT.2016.04.045
  • Crist, E., Mora, C., & Engelman, R. (2017). The interaction of human population, food production, and biodiversity protection. Science, 356(6335), 260–264. Retrieved from http://www.truehealthinitiative.org/wordpress/wp-content/uploads/2017/06/260.full_.pdf
  • Cuggino, S. G., Pérez Agostini, A., Kopp, S., & Novo, R. (2018). Quality and safety management systems in the production of vegetables. In Quantitative methods for food safety and quality in the vegetable industry (pp. 11–28). Cham: Springer International Publishing. doi:10.1007/978-3-319-68177-1_2
  • de Bon, H., Huat, J., Parrot, L., Sinzogan, A., Martin, T., Malézieux, E., & Vayssières, J.-F. (2014). Pesticide risks from fruit and vegetable pest management by small farmers in sub-Saharan Africa. A review. Agronomy for Sustainable Development, 34(4), 723–736. doi:10.1007/s13593-014-0216-7
  • Deadman, M. L. (2017). Sources of pesticide residues in food: Toxicity, exposure, and risk associated with use at the farm level. In Pesticide residue in foods (pp. 7–35). Cham: Springer International Publishing. doi:10.1007/978-3-319-52683-6_2
  • Debnath, M., & Khan, M. S. (2017). Health concerns of pesticides. In Pesticide Residue in Foods (pp. 103–118). Cham: Springer International Publishing. doi:10.1007/978-3-319-52683-6_6
  • Dekeyser, M. A. (2005). Acaricide mode of action. Pest Management Science, 61(2), 103–110. doi:10.1002/ps.994
  • Drury, G. (2014). The true threat of counterfeit pesticides. International Pest Control, 56(2), 108–109. Retrieved from https://search.proquest.com/openview/a514cc78651d16822bd933b83871d8fe/1?pq-origsite=gscholar&cbl=2029999
  • Du, J., Gridneva, Z., Gay, M. C. L., Trengove, R. D., Hartmann, P. E., & Geddes, D. T. (2017). Pesticides in human milk of Western Australian women and their influence on infant growth outcomes: A cross-sectional study. Chemosphere, 167, 247–254. doi:10.1016/J.CHEMOSPHERE.2016.10.005
  • Evangelou, E., Ntritsos, G., Chondrogiorgi, M., Kavvoura, F. K., Hernández, A. F., Ntzani, E. E., & Tzoulaki, I. (2016). Exposure to pesticides and diabetes: A systematic review and meta-analysis. Environment International, 91, 60–68. doi:10.1016/J.ENVINT.2016.02.013
  • Fang, Y., Nie, Z., Yang, Y., Die, Q., Liu, F., He, J., & Huang, Q. (2015). Human health risk assessment of pesticide residues in market-sold vegetables and fish in a northern metropolis of China. Environmental Science and Pollution Research, 22(8), 6135–6143. doi:10.1007/s11356-014-3822-7
  • FAO. (2013). Codex alimentarius commission procedural manual (21st ed.). Rome: Author. Retrieved from www.codexalimentarius.org
  • FAO, & WHO. (1997). Codex maximum limits for pesticide residues. Retrieved from http://www.fao.org/waicent/faostat/Pest-Residue/pest-e.htm#E11E3
  • FAO, & WHO. (2015). Pesticide residues in food. Report of the Joint Meeting of the FAO Panel of Experts on Pesticide Residues in Food and the Environment and the WHO Core Assessment Group. FAO Plant Production and Protection Paper, 223. Rome. Retrieved from http://www.fao.org/3/a-i5186e.pdf
  • FAO, & WHO. (2017). Pesticide residues in food. Report of the Joint Meeting of the FAO Panel of Experts on Pesticide Residues in Food and the Environment and the WHO Core Assessment Group. FAO Plant Production and Protection Paper, 232. Rome. Retrieved from http://www.fao.org/3/I8258EN/i8258en.pdf
  • FAO, & WHO. (2018). Codex alimentarius internation food standards. Retrieved from http://www.fao.org/fao-who-codexalimentarius/publications/en/
  • Ferrer, C., Lozano, A., Uclés, S., Valverde, A., & Fernández-Alba, A. R. (2017). European Union proficiency tests for pesticide residues in fruit and vegetables from 2009 to 2016: Overview of the results and main achievements. Food Control, 82, 101–113. doi:10.1016/J.FOODCONT.2017.06.020
  • Fritschi, L., McLaughlin, J., Sergi, C., Calaf, G., Le Curieux, F., Forastiere, F., et al. (2015). Carcinogenicity of tetrachlorvinphos, parathion, malathion, diazinon, and glyphosate. Red, 114, 2. doi:10.1016/S1470-2045(15)70134-8
  • Giusti, A., Pirard, C., Charlier, C., Petit, J. C. J., Crevecoeur, S., & Remy, S. (2018). Selection and ranking method for currently used pesticides (CUPs) monitoring in ambient air. Air Quality, Atmosphere & Health, 1–12. doi:10.1007/s11869-017-0516-6
  • Glória, S., Marques, J., Feiteiro, J., Marcelino, H., Verde, I., & Cairrão, E. (2018). Tributyltin role on the serotonin and histamine receptors in human umbilical artery. Toxicology in Vitro, 50, 210–216. doi:10.1016/J.TIV.2018.03.006
  • Guyton, K. Z., Loomis, D., Grosse, Y., El Ghissassi, F., Benbrahim-Tallaa, L., Guha, N., … Straif, K. (2015). Carcinogenicity of tetrachlorvinphos, parathion, malathion, diazinon, and glyphosate. Lancet Oncology, 16, 490–491. doi:10.1016/S1470-2045(15)70134-8
  • Hamilton, D., Yoshida, M., Wolterink, G., & Solecki, R. (2017). Evaluation of pesticide residues by FAO/WHO JMPR. In Food safety assessment of pesticide residues (pp. 113–196). EUROPE: WORLD SCIENTIFIC. doi:10.1142/9781786341693_0004
  • Han, Y., Song, L., Liu, S., Zou, N., Li, Y., Qin, Y., … Pan, C. (2018). Simultaneous determination of 124 pesticide residues in Chinese liquor and liquor-making raw materials (sorghum and rice hull) by rapid Multi-plug Filtration Cleanup and gas chromatography–Tandem mass spectrometry. Food Chemistry, 241, 258–267. doi:10.1016/J.FOODCHEM.2017.08.103
  • Handford, C. E., Elliott, C. T., & Campbell, K. (2015). A review of the global pesticide legislation and the scale of challenge in reaching the global harmonization of food safety standards. Integrated Environmental Assessment and Management, 11(4), 525–536. doi:10.1002/ieam.1635
  • Heard, M. S., Baas, J., Dorne, J. L., Lahive, E., Robinson, A. G., Rortais, A., … Hesketh, H. (2017). Comparative toxicity of pesticides and environmental contaminants in bees: Are honey bees a useful proxy for wild bee species? Science of the Total Environment, 578, 357–365. doi:10.1016/J.SCITOTENV.2016.10.180
  • Hoi, P. V., Mol, A. P. J., Oosterveer, P., van Den Brink, P. J., & Huong, P. T. M. (2016). Pesticide use in Vietnamese vegetable production: A 10-year study. International Journal of Agricultural Sustainability, 14(3), 325–338. doi:10.1080/14735903.2015.1134395
  • Hossain, L., Rahman, R., & Khan, M. S. (2017). Alternatives of pesticides. In Pesticide residue in foods (pp. 147–165). Cham: Springer International Publishing. doi:10.1007/978-3-319-52683-6_9
  • Ibrahim, I., Awang, A. H., Hashim, K., Ramli, Z., Lyndon, N., Azian, F. U. M., et al. (2018). Independent oil palm smallholder participation and technology transfer. In Selected topics on archaeology, history and culture in the malay world (pp. 217–224). Singapore: Springer Singapore. doi:10.1007/978-981-10-5669-7_18
  • Islam, M. N., Bint-E-Naser, S. F., & Khan, M. S. (2017). Pesticide food laws and regulations. In Pesticide residue in foods (pp. 37–51). Cham: Springer International Publishing. doi:10.1007/978-3-319-52683-6_3
  • Jia, C., & Jukes, D. (2013). The national food safety control system of China – a systematic review. Food Control, 32(1), 236–245. doi:10.1016/J.FOODCONT.2012.11.042
  • Jin, S., Zhang, Y., & Xu, Y. (2017). Amount of information and the willingness of consumers to pay for food traceability in China. Food Control, 77, 163–170. doi:10.1016/J.FOODCONT.2017.02.012
  • Johannessen, G. S., & Cudjoe, K. S. (2014). Regulatory issues in Europe regarding fresh fruit and vegetable safety. In The produce contamination problem (pp. 365–386). Elsevier. doi:10.1016/B978-0-12-404611-5.00016-6
  • Karasali, H., Kasiotis, K. M., Machera, K., & Ambrus, A. (2014). Case study to illustrate an approach for detecting contamination and impurities in pesticide formulations. Journal of Agricultural and Food Chemistry, 62(47), 11347–11352. doi:10.1021/jf504729g
  • Kaushik, G., Chel, A., & Gadekar, A. (2017). Methods of pesticide residues reduction in grains. In Pesticide residue in foods (pp. 119–133). Cham: Springer International Publishing. doi:10.1007/978-3-319-52683-6_7
  • Lekei, E., Ngowi, A. V., & London, L. (2017). Acute pesticide poisoning in children: Hospital review in selected hospitals of Tanzania. Journal of Toxicology, (2017, 1–8. doi:10.1155/2017/4208405
  • Lekei, E. E., Ngowi, A. V., & London, L. (2014). Farmers’ knowledge, practices and injuries associated with pesticide exposure in rural farming villages in Tanzania. BMC Public Health, 14(1), 389. doi:10.1186/1471-2458-14-389
  • Lekei, E. E., Ngowi, A. V., & London, L. (2016). Undereporting of acute pesticide poisoning in Tanzania: Modelling results from two cross-sectional studies. Environmental Health, 15(1), 118. doi:10.1186/s12940-016-0203-3
  • Liu, Y., Pan, X., & Li, J. (2015). A 1961–2010 record of fertilizer use, pesticide application and cereal yields: A review. Agronomy for Sustainable Development, 35(1), 83–93. doi:10.1007/s13593-014-0259-9
  • Lozowicka, B., Kaczynski, P., Paritova, А. Е., Kuzembekova, G. B., Abzhalieva, A. B., Sarsembayeva, N. B., & Alihan, K. (2014). Pesticide residues in grain from Kazakhstan and potential health risks associated with exposure to detected pesticides. Food and Chemical Toxicology, 64, 238–248. doi:10.1016/J.FCT.2013.11.038
  • Maggioni, D. A., Signorini, M. L., Michlig, N., Repetti, M. R., Sigrist, M. E., & Beldomenico, H. R. (2017). Comprehensive estimate of the theoretical maximum daily intake of pesticide residues for chronic dietary risk assessment in Argentina. Journal of Environmental Science and Health, Part B, 52(4), 256–266. doi:10.1080/03601234.2016.1272997
  • Maul, J. D., Blackstock, C., & Brain, R. A. (2018). Derivation of avian dermal LD50 values for dermal exposure models using in vitro percutaneous absorption of [14C]-atrazine through rat, mallard, and northern bobwhite full thickness skin. Science of the Total Environment, 630, 517–525. doi:10.1016/J.SCITOTENV.2018.02.206
  • Mekonen, S., Ambelu, A., & Spanoghe, P. (2014). Pesticide residue evaluation in major staple food items of Ethiopia using the QuEChERS method: A case study from the Jimma Zone. Environmental Toxicology and Chemistry, 33(6), 1294–1302. doi:10.1002/etc.2554
  • Mesnage, R., Defarge, N., Spiroux de Vendômois, J., & Séralini, G.-E. (2014). Major pesticides are more toxic to human cells than their declared active principles. BioMed Research International, 2014, 179691. doi:10.1155/2014/179691
  • Miszczyk, M., Płonka, M., Stobiecki, T., Kronenbach-Dylong, D., Waleczek, K., & Weber, R. (2018). Official control of plant protection products in Poland: Detection of illegal products. Environmental Science and Pollution Research, 1–11. doi:10.1007/s11356-018-1739-2
  • Mununa, F. T., Mkenda, J., & Sikay, M. (2014). Towards Best Practices of Pesticide Management (BPPM) for environmen-tal and human health protection in Tanzania. African Newsletter on Occupational Health and Safety, 24(3). Retrieved from http://ihi.eprints.org/3022/1/Elikana_Lekei.pdf#page=18
  • Nambirajan, K., Muralidharan, S., Manonmani, S., Kirubhanandhini, V., & Ganesan, K. (2018). Incidences of mortality of Indian peafowl Pavo cristatus due to pesticide poisoning in India and accumulation pattern of chlorinated pesticides in tissues of the same species collected from Ahmedabad and Coimbatore. Environmental Science and Pollution Research, 1–9. doi:10.1007/s11356-018-1750-7
  • Nasr, T., Bondock, S., Youns, M., Fayad, W., & Zaghary, W. (2017). Synthesis, antitumor evaluation and microarray study of some new pyrazolo[3,4-d][1,2,3]triazine derivatives. European Journal of Medicinal Chemistry, 141, 603–614. doi:10.1016/J.EJMECH.2017.10.016
  • Ngowi, A., Mrema, E., & Kishinhi, S. (2016). Pesticide health and safety challenges facing informal sector workers. New Solutions: A Journal of Environmental and Occupational Health Policy, 26(2), 220–240. doi:10.1177/1048291116650262
  • Nuapia, Y., Chimuka, L., & Cukrowska, E. (2016). Assessment of organochlorine pesticide residues in raw food samples from open markets in two African cities. Chemosphere, 164, 480–487. doi:10.1016/J.CHEMOSPHERE.2016.08.055
  • Olsen, S., & Allen, K. (2017). Farm food safety laws: FSMA vs. GAP (No. 1750). All current publications. Utah: Utah State University Extension. Retrieved from https://digitalcommons.usu.edu/extension_curall/1750
  • Onwona-Kwakye, M., Mengistie, B., Ofosu-Anim, J., Nuer, A. T. K., & Van Den Brink, P. J. (2018). Pesticide registration, distribution and use practices in Ghana. Environment, Development and Sustainability, 1–25. doi:10.1007/s10668-018-0154-7
  • Pandit, U., Nain, M., Singh, R., Kumar, S., & Chahal, V. (2017). Adoption of Good Agricultural Practices (GAPs) in Basmati (Scented) rice: A study of prospects and retrospect. Indian Journal of Agricultural Sciences, 87(1), 36–41. Retrieved from https://www.researchgate.net/profile/MS_Nain2/publication/313578609_Adoption_of_Good_Agricultural_Practices_GAPs_in_Basmati_Scented_rice_A_study_of_prospects_and_retrospect/links/599ad059a6fdcc2615887867/Adoption-of-Good-Agricultural-Practices-GAPs-in-Bas
  • Paoloni, A., Alunni, S., Pelliccia, A., & Pecorelli, I. (2016). Rapid determination of residues of pesticides in honey by µGC-ECD and GC-MS/MS: Method validation and estimation of measurement uncertainty according to document No. SANCO/12571/2013. Journal of Environmental Science and Health, Part B, 51(3), 133–142. doi:10.1080/03601234.2015.1108748
  • Patinha, C., Durães, N., Dias, A. C., Pato, P., Fonseca, R., Janeiro, A., et al. (2018). Long-term application of the organic and inorganic pesticides in vineyards: Environmental record of past use. Applied Geochemistry, 88, 226–238. doi:10.1016/J.APGEOCHEM.2017.05.014
  • Pheiffer, W., Wolmarans, N. J., Gerber, R., Yohannes, Y. B., Ikenaka, Y., Ishizuka, M., … Pieters, R. (2018). Fish consumption from urban impoundments: What are the health risks associated with DDTs and other organochlorine pesticides in fish to township residents of a major inland city. Science of the Total Environment, 628–629, 517–527. doi:10.1016/J.SCITOTENV.2018.02.075
  • Płonka, M., Walorczyk, S., & Miszczyk, M. (2016). Chromatographic methods for the determination of active substances and characterization of their impurities in pesticide formulations. TrAC Trends in Analytical Chemistry, 85, 67–80. doi:10.1016/J.TRAC.2016.03.011
  • Qian, J., Shi, C., Wang, S., Song, Y., Fan, B., & Wu, X. (2018). Cloud-based system for rational use of pesticide to guarantee the source safety of traceable vegetables. Food Control, 87, 192–202. doi:10.1016/J.FOODCONT.2017.12.015
  • Rivera-Becerril, F., van Tuinen, D., Chatagnier, O., Rouard, N., Béguet, J., Kuszala, C., … Martin-Laurent, F. (2017). Impact of a pesticide cocktail (fenhexamid, folpel, deltamethrin) on the abundance of Glomeromycota in two agricultural soils. Science of the Total Environment, 577, 84–93. doi:10.1016/J.SCITOTENV.2016.10.098
  • Sarwar, M. (2016). Inorganic insecticides used in landscape settings and insect pests. Chemistry Research Journal, 1(1), 50–57. Retrieved from http://chemrj.org/download/vol-1-iss-1-2016/chemrj-2016-01-01-50-57.pdf
  • Schreinemachers, P., Schad, I., Tipraqsa, P., Williams, P. M., Neef, A., Riwthong, S., et al. (2012). Can public GAP standards reduce agricultural pesticide use? The case of fruit and vegetable farming in northern Thailand. Agriculture and Human Values, 29(4), 519–529. doi:10.1007/s10460-012-9378-6
  • Schreinemachers, P., & Tipraqsa, P. (2012). Agricultural pesticides and land use intensification in high, middle and low income countries. Food Policy, 37(6), 616–626. doi:10.1016/J.FOODPOL.2012.06.003
  • Scientific Committee, E. F. S. A. (2015). Risk profile related to production and consumption of insects as food and feed. EFSA Journal, 13(10), 4257. doi:10.2903/j.efsa.2015.4257
  • Shahid, M., Ahmad, A., Khalid, S., Siddique, H. F., Saeed, M. F., Ashraf, M. R., et al. (2016). Pesticides pollution in agricultural soils of Pakistan. In Soil science: Agricultural and environmental prospectives (pp. 199–229). Cham: Springer International Publishing. doi:10.1007/978-3-319-34451-5_9
  • Shaw, A., Strohbehn, C., & Naeve, L. (2015). Systematic approach to food safety education on the farm. Journal of Extension, 56(6), 6IAW4. Retrieved from https://lib.dr.iastate.edu/fshn_ag_pubs/123
  • Sieke, C., Michalski, B., & Kuhl, T. (2018). Probabilistic dietary risk assessment of pesticide residues in foods for the German population based on food monitoring data from 2009 to 2014. Journal of Exposure Science and Environmental Epidemiology, 28(1), 46–54. doi:10.1038/jes.2017.7
  • Singh, N. S., Sharma, R., Parween, T., & Patanjali, P. K. (2018). pesticide contamination and human health risk factor. In Modern age environmental problems and their remediation (pp. 49–68). Cham: Springer International Publishing. doi:10.1007/978-3-319-64501-8_3
  • Skretteberg, L. G., Lyrån, B., Holen, B., Jansson, A., Fohgelberg, P., Siivinen, K., … Jensen, B. H. (2015). Pesticide residues in food of plant origin from Southeast Asia – a Nordic project. Food Control, 51, 225–235. doi:10.1016/J.FOODCONT.2014.11.008
  • Sparks, T. C., & Nauen, R. (2015). IRAC: Mode of action classification and insecticide resistance management. Pesticide Biochemistry and Physiology, 121, 122–128. doi:10.1016/J.PESTBP.2014.11.014
  • Stehle, S., & Schulz, R. (2015). Agricultural insecticides threaten surface waters at the global scale. Proceedings of the National Academy of Sciences of the United States of America, 112(18), 5750–5755. doi:10.1073/pnas.1500232112
  • Strickland, J., Clippinger, A. J., Brown, J., Allen, D., Jacobs, A., Matheson, J., … Casey, W. (2018). Status of acute systemic toxicity testing requirements and data uses by U.S. regulatory agencies. Regulatory Toxicology and Pharmacology, 94, 183–196. doi:10.1016/J.YRTPH.2018.01.022
  • Szpyrka, E., Kurdziel, A., Matyaszek, A., Podbielska, M., Rupar, J., & Słowik-Borowiec, M. (2015). Evaluation of pesticide residues in fruits and vegetables from the region of south-eastern Poland. Food Control, 48, 137–142. doi:10.1016/J.FOODCONT.2014.05.039
  • Thompson, L. A., Darwish, W. S., Ikenaka, Y., Nakayama, S. M. M., Mizukawa, H., & Ishizuka, M. (2017). Organochlorine pesticide contamination of foods in Africa: Incidence and public health significance. Journal of Veterinary Medical Science, 79(4), 751–764. doi:10.1292/jvms.16-0214
  • Troczka, B. J., Williams, A. J., Williamson, M. S., Field, L. M., Lüemmen, P., & Davies, T. G. E. (2015). Stable expression and functional characterisation of the diamondback moth ryanodine receptor G4946E variant conferring resistance to diamide insecticides. Scientific Reports, 5, 14680. doi:10.1038/srep14680
  • Udeigwe, T. K., Teboh, J. M., Eze, P. N., Hashem Stietiya, M., Kumar, V., Hendrix, J., … Kandakji, T. (2015). Implications of leading crop production practices on environmental quality and human health. Journal of Environmental Management, 151, 267–279. doi:10.1016/J.JENVMAN.2014.11.024
  • Uyttendaele, M., Jacxsens, L., & Van Boxstael, S. (2014). Issues surrounding the European fresh produce trade: A global perspective. In Global safety of fresh produce (pp. 33–51). Elsevier. doi:10.1533/9781782420279.1.33
  • van Asselt, E. D., Banach, J. L., & van der Fels-Klerx, H. J. (2018). Prioritization of chemical hazards in spices and herbs for European monitoring programs. Food Control, 83, 7–17. doi:10.1016/J.FOODCONT.2016.12.023
  • van der Velde-Koerts, T., Margerison, S., Breysse, N., Lutze, J., Mahieu, K., Reich, H., … Ossendorp, B. C. (2018). Impact of proposed changes in IESTI equations for short-term dietary exposure to pesticides from Australian and Codex perspective. Journal of Environmental Science and Health, Part B, 53(6), 366–379. doi:10.1080/03601234.2018.1439812
  • van Lexmond, M. B., Bonmatin, J.-M., Goulson, D., & Noome, D. A. (2015). Worldwide integrated assessment on systemic pesticides. Environmental Science and Pollution Research, 22(1), 1–4. doi:10.1007/s11356-014-3220-1
  • Velki, M., & Ečimović, S. (2015). Changes in exposure temperature lead to changes in pesticide toxicity to earthworms: A preliminary study. Environmental Toxicology and Pharmacology, 40(3), 774–784. doi:10.1016/J.ETAP.2015.09.009
  • von Goetz, N., Pirow, R., Hart, A., Bradley, E., Poças, F., Arcella, D., … Leclercq, C. (2017). Including non-dietary sources into an exposure assessment of the European food safety authority: The challenge of multi-sector chemicals such as Bisphenol A. Regulatory Toxicology and Pharmacology, 85, 70–78. doi:10.1016/J.YRTPH.2017.02.004
  • Wei, Q., Mu, X.-C., Wu, S.-F., Wang, L.-X., & Gao, C.-F. (2017). Cross-resistance to three phenylpyrazole insecticides and A2′N mutation detection of GABA receptor subunit in fipronil-resistant Laodelphax striatellus (Hemiptera: Delphacidae). Pest Management Science, 73(8), 1618–1624. doi:10.1002/ps.4498
  • Winter, C. K. (2017). Pesticide residues in foods. In Chemical contaminants and residues in food (pp. 155–169). Elsevier. doi:10.1016/B978-0-08-100674-0.00007-2
  • World Health Organization. (2010). The WHO Recommended Classification of Pesticides by Hazard and Guidelines to Classification 2009. Geneva: WHO Press. Retrieved from http://www.who.int/ipcs/publications/pesticides_hazard_2009.pdf?ua=1
  • Xianxia, W., & Yunxi, Z. (2018). Farmers’ Dual Roles in Food Safety: Perceptions and Countermeasures. Journal of Resources and Ecology, 9(sp1), 78–84. doi:10.5814/j.issn.1674-764x.2018.01.009
  • Yadav, I. C., Devi, N. L., Syed, J. H., Cheng, Z., Li, J., Zhang, G., & Jones, K. C. (2015). Current status of persistent organic pesticides residues in air, water, and soil, and their possible effect on neighboring countries: A comprehensive review of India. Science of the Total Environment, 511, 123–137. doi:10.1016/J.SCITOTENV.2014.12.041
  • Yamada, Y. (2017). Importance of codex maximum residue limits for pesticides for the health of consumers and international trade. In Food safety assessment of pesticide residues (pp. 269–282). EUROPE: WORLD SCIENTIFIC. doi:10.1142/9781786341693_0007
  • Yan, X., He, B., Liu, L., Qu, G., Shi, J., Liao, C., et al. (2018). Organotin exposure stimulates steroidogenesis in H295R Cell via cAMP pathway. Ecotoxicology and Environmental Safety, 156, 148–153. doi:10.1016/J.ECOENV.2018.03.028
  • Yang, X., Luo, J., Duan, Y., Li, S., & Liu, C. (2018). Simultaneous analysis of multiple pesticide residues in minor fruits by ultrahigh-performance liquid chromatography/hybrid quadrupole time-of-fight mass spectrometry. Food Chemistry, 241, 188–198. doi:10.1016/J.FOODCHEM.2017.08.102
  • Yeung, M., Kerr, W. A., Coomber, B., Lantz, M., & McConnell, A. (2018). Declining harmonization in maximum residue levels for pesticides. British Food Journal, 120(4), 901–913. doi:10.1108/BFJ-05-2017-0291
  • Yeung, M. T., Kerr, W. A., Coomber, B., Lantz, M., & McConnell, A. (2017). why maximum residue limits for pesticides are an important international issue. In Declining international cooperation on pesticide regulation (pp. 1–9). Cham: Springer International Publishing. doi:10.1007/978-3-319-60552-4_1
  • Yimaer, A., Chen, G., Zhang, M., Zhou, L., Fang, X., & Jiang, W. (2017). Childhood pesticide poisoning in Zhejiang, China: A retrospective analysis from 2006 to 2015. BMC Public Health, 17(1), 602. doi:10.1186/s12889-017-4505-3
  • Yu, X., Gao, Z., & Zeng, Y. (2014). Willingness to pay for the “Green Food” in China. Food Policy, 45, 80–87. doi:10.1016/J.FOODPOL.2014.01.003
  • Zarn, J. A., & O’Brien, C. D. (2018). Current pesticide dietary risk assessment in light of comparable animal study NOAELs after chronic and short-termed exposure durations. Archives of Toxicology, 92(1), 157–167. doi:10.1007/s00204-017-2052-4
  • Zhang, L., Li, X., Yu, J., & Yao, X. (2018). Toward cleaner production: What drives farmers to adopt eco-friendly agricultural production? Journal of Cleaner Production, 184, 550–558. doi:10.1016/J.JCLEPRO.2018.02.272
  • Zhang, M., Jin, Y., Qiao, H., & Zheng, F. (2017). Product quality asymmetry and food safety: Investigating the “one farm household, two production systems” of fruit and vegetable farmers in China. China Economic Review, 45, 232–243. doi:10.1016/J.CHIECO.2017.07.009
  • Zhang, M., Zeiss, M. R., & Geng, S. (2015). Agricultural pesticide use and food safety: California’s model. Journal of Integrative Agriculture, 14(11), 2340–2357. doi:10.1016/S2095-3119(15)61126-1
  • Zhao, L., Wang, C., Gu, H., & Yue, C. (2018). Market incentive, government regulation and the behavior of pesticide application of vegetable farmers in China. Food Control, 85, 308–317. doi:10.1016/J.FOODCONT.2017.09.016
  • Zoller, O., Rhyn, P., Rupp, H., Zarn, J. A., & Geiser, C. (2018). Glyphosate residues in Swiss market foods: Monitoring and risk evaluation. Food Additives & Contaminants: Part B, 1–9. doi:10.1080/19393210.2017.1419509
  • Zulet, A., Gil-Monreal, M., Villamor, J. G., Zabalza, A., van der Hoorn, R. A. L., & Royuela, M. (2013). Proteolytic pathways induced by herbicides that inhibit amino acid biosynthesis. PloS one, 8(9), e73847. doi:10.1371/journal.pone.0073847