222
Views
0
CrossRef citations to date
0
Altmetric
Research Article

Acute toxicity of three herbicide formulations of Astyanax altiparanae (Characiformes, Characidae), an emerging neotropical fish model species

, , , , , , , , , & show all

References

  • Abbas, T. Z. A. Z., M. Naveed, and R. J. Kremer. 2018. Limitations of existing weed control practises necessitate develpoment of alternative techniques based on biological approaches. Adv. Agron. 147:239–2803.
  • Abou Rafee, S. A., C. B. Uvo, J. A. Martins, L. M. Domingues, A. P. Rudke, T. Fujita, and E. D. Freitas. 2019. Large-scale hydrological modelling of the upper Paraná River basin. Water 11 (5):882. doi:10.3390/w11050882.
  • Amoatey, P. A., and M. S. Baawain. 2019. Effects of pollution on freshwater aquatic organisms. Water Environ. Res. 91 (10):1272–87. doi:10.1002/wer.1221.
  • Anifandis, G., G. Amiridis, K. Dafopoulos, A. Daponte, E. Dovolou, E. Gavriil, V. Gorgogietas, E. Kachpani, Z. Mamuris, C. I. Messini, et al. 2018. The in vitro impact of the herbicide Roundup on human sperm motility and sperm mitochondria. Toxics. 6(1):2. doi:10.3390/toxics6010002.
  • Babalola, O. O., and J. H. van Wyk. 2018. Comparative early life stage toxicity of the African clawed frog, Xenopus laevis following exposure to selected herbicide formulations applied to eradicate alien plants in South Africa. Arch. Environ. Contam. Toxicol. 75 (1):8–16. doi:10.1007/s00244-017-0463-0.
  • Babalola, O. O., and J. H. van Wyk. 2021. Exposure impacts of imazapyr formulation on larval development and thyroid histology of Xenopus laevis. Environ Sci Pollut Res Int 28 (37):50967–74. doi:10.1007/s11356-021-14227-4.
  • Barros, R. E., M. M. Reis, L. D. T. Santos, J. F. Correira, and R. F. Souza. 2022. Light availability in the cultivation environment and the action of glyphosate on Digitaria insularis physiological aspects and herbicide root exudation. J Environ Sci Health B 57 (7):597–607. doi:10.1080/03601234.2022.2088198.
  • Benoit, L. K., and D. H. Les. 2013. Rapid identification and molecular characterization of phytoene desaturase mutations in fluridone-resistant Hydrilla (Hydrilla verticillata). Weed Sci. 61 (1):32–40. doi:10.1614/WS-D-12-00018.1.
  • Breckels, R. D., and B. W. Kilgour. 2018. Aquatic herbicide applications for the control of aquatic plants in Canada. Environ. Rev. 26 (3):333–38. doi:10.1139/er-2018-0002.
  • Carvalho, F. T. D., E. D. Velini, E. Negrisoli, and C. V. S. Rossi. 2005. Eficácia do carfentrazone-ethyl no controle de plantas aquáticas latifoliadas em caixas-d’água. Planta. Daninha 23 (2):305–10. doi:10.1590/S0100-83582005000200018.
  • Caverzan, A., C. Piasecki, G. Chavarria, C. N. Stewart, and L. Vargas. 2019. Defenses against ROS in crops and weeds: The effects of interference and herbicides. Int J Mol Sci 20 (5):1086. doi:10.3390/ijms20051086.
  • Clesceri, L. S., A. E. Greenberg, and A. D. Eaton. 1998. Standard methods for the examination of water and wastewater. 20th ed. Washington, D.C: American Public Health Association.
  • Costa, G., A. Fernandes, T. Santos, L. Brito, L. Rodrigues, M. Valadares, I. Felzenswalb, E. Ferraz, D. M. Leme, and G. Oliveira. 2022. In vitro and in vivo cytotoxicity assessment of glyphosate and imazethapyr-based herbicides and their association. J. Toxicol. Environ. Health A 85 (12):481–93. doi:10.1080/15287394.2022.2036281.
  • Council of the European Union. 1998. Council directive 98/83/EC of 3 November 1998 on the quality of water intended for human consumption. Off. J. Eur. Communities 1998, L330, 32-54. Acessed January 6 2023. https://eur-lex.europa.eu/legal-content/EN/TXT/PDF/?uri=CELEX:01998L0083-20151027&from=EN.
  • Cruz, C. D., A. F. Silva, N. S. Shiogiri, N. Garlich, and R. A. Pitelli. 2015. Imazapyr herbicide efficacy on floating macrophyte control and ecotoxicology for nontarget organisms. Planta. Daninha 33 (1):103–08. doi:10.1590/S0100-83582015000100012.
  • Domingues, F. D., F. L. R. M. Starling, C. C. Nova, B. R. Loureiro, L. C. Souza, and C. W. C. Branco. 2016. The control of floating macrophytes by grass carp in net cages: Experiments in two tropical hydroelectric reservoirs. Aquat Res 48 (7):3356–68. doi:10.1111/are.13163.
  • Do Nascimento, N. F., P. S. Monzani, M. Pereira-Santos, D. Niedzielski, J. A. Senhorini, L. A. Silva, L. S. O. Nakaghi, and G. S. Yasui. 2020. The first case of induced gynogenesis in Neotropical fishes using the yellowtail tetra (Astyanax altiparanae) as a model organism. Aquaculture 514:734432. doi:10.1016/j.aquaculture.2019.734432.
  • Dugdale, T. M., K. L. Butler, M. J. Finlay, Z. Liu, D. B. Rees, and D. Clements. 2020. Residues and dissipation of the herbicide imazapyr after operational use in irrigation water. Int. J. Environ. Res. Public Health 17 (7):2421. doi:10.3390/ijerph17072421.
  • Durkin, P. R. 2010. Appendices to glyphosate, human health and ecological risk assessment, FINAL REPORT. SERA TR-052-22-03a-App, Accessed January 6 2023. https://www.fs.usda.gov/foresthealth/pesticide/pdfs/Glyphosate_SERA_TR-052-22-03a-App.pdf
  • Erickson, R. 2015. Toxicity relationship analysis program (TRAP), Version 1.30a. EPA 600/C-11/002. Washington D.C: US Environmental Protection Agency.
  • Esteves, B. S., C. da Cruz, N. Garlich, J. C. Moraes, and P. C. Pereira. 2020. Efeito do tempo de exposição ao diquat para controle de plantas aquáticas submersas e desenvolvimento de nova tabela de avaliação de eficácia. Rev. Brasil Herbicidas 19 (3):1–9. doi:10.7824/rbh.v19i3.709.
  • Fernandes, K., A. Gomes, L. Calado, G. S. Yasui, D. Assis, T. Henry, A. Fonseca, and E. Pinto. 2019. Toxicity of cyanopeptides from two microcystis strains on larval development of Astyanax altiparanae. null 11 (4):220. doi:10.3390/toxins11040220.
  • Fiorino, E., P. Sehonova, L. Plhalova, J. Blahova, Z. Svobodova, and C. Faggio. 2018. Effects of glyphosate on early life stages: Comparison between Cyprinus carpio and Danio rerio. Environ. Sci. Pollut. Res. 25 (9):8542–49. doi:10.1007/s11356-017-1141-5.
  • Flach, H., A. Lenz, S. Pfeffer, M. Kühl, and S. J. Kühl. 2022. Impact of glyphosate-based herbicide on early embryonic development of the amphibian Xenopus laevis. Aquat. Toxicol. 244:106081. doi:10.1016/j.aquatox.2022.106081.
  • Folmar, L. C., H. O. Sanders, and A. M. Julin. 1979. Toxicity of the herbicide glyphosate and several of its formulations to fish and aquatic invertebrates. Arch. Environ. Contam. Toxicol. 8 (3):269–78. doi:10.1007/BF01056243.
  • Francisco, C. M., L. A. Pavanin, S. Morelli, J. V. M. Bravo, and B. B. Pereira. 2023. Using native fish in eco-genotoxic assessment of heavy metal contamination pollution arising from nearby large Brazilian rivers. J. Toxicol. Environ. Health A 86 (2–3):74–85. doi:10.1080/15287394.2022.2164754.
  • Gaaied, S., M. Oliveira, F. Le Bihanic, J. Cachot, and M. Banni. 2019. Gene expression patterns and related enzymatic activities of detoxification and oxidative stress systems in zebrafish larvae exposed to the 2.4-dichlorophenoxyacetic acid herbicide. Chemosphere 224:289–97. doi:10.1016/j.chemosphere.2019.02.125.
  • Gage, K. L., R. I. Krausz, and S. A. Walters. 2019. Emerging challenges for weed management in herbicide-resistant crops. Agriculture 9 (8):180. doi:10.3390/agriculture9080180.
  • Gilderhus, P. A. 1967. Effects of diquat on bluegills and their food organisms. Prog. Fish Cult 29 (2):67–74. doi:10.1577/1548-8640(1967)29[67:EODOBA]2.0.CO;2.
  • Gonçalves, B. B., N. F. Nascimento, M. P. Santos, R. M. Bertolini, G. S. Yasui, and P. C. Giaquinto. 2018. Low concentrations of glyphosate-based herbicide cause complete loss of sperm motility of yellowtail tetra fish Astyanax lacustris. J. Fish Biol. 92 (4):1218–24. doi:10.1111/jfb.13571.
  • Grzenda, A. R., H. P. Nicholson, and W. S. Cox. 1966. Persistence of four herbicides in pond water. J. Am Water Works 58 (3):326–32. doi:10.1002/j.1551-8833.1966.tb01586.x.
  • Gu, X., Y. Cen, L. Guo, C. Li, H. Yuan, Z. Xu, and G. Jiang. 2019. Responses of weed community, soil nutrients, and microbes to different weed management practices in a fallow field in Northern China. Perr. J 7:e7650. doi:10.7717/peerj.7650.
  • Haller, W. T., and R. K. Stocker. 2003. Toxicity of 19 adjuvants to juvenile Lepomis macrochirus (bluegill sunfish). Environ. Toxicol. Chem. 22 (3):615–19. doi:10.1002/etc.5620220321.
  • Hara, S., N. Sasaki, D. Takase, S. Shiotsuka, K. Ogata, K. Futagami, and K. Tamura. 2007. Rapid and sensitive HPLC method for the simultaneous determination of paraquat and diquat in human serum. Anal Sci 23 (5):523–26. doi:10.2116/analsci.23.523.
  • Holt, M. S. 2000. Sources of chemical contaminants and routes into the freshwater environment. Food Chem. Toxicol. 38 (1 Suppl):S21–27. doi:10.1016/S0278-6915(99)00136-2.
  • Howe, C. M., M. Berrill, B. D. Pauli, C. C. Helbing, K. Werry, and N. Veldhoen. 2004. Toxicity of glyphosate-based pesticides to four North American frog species. Environ. Toxicol. Chem. 23 (8):1928–38. doi:10.1897/03-71.
  • Khrolenko, M. V., and P. P. Wieczorek. 2005. Determination of glyphosate and its metabolite aminomethylphosphonic acid in fruit juices using supported-liquid membrane preconcentration method with high-performance liquid chromatography and UV detection after derivatization with p-toluenesulphonyl chloride. J. Chromatogr. A 1093 (1–2):111–17. doi:10.1016/j.chroma.2005.07.062.
  • Krause, M. K., and E. von Brand. 2016. Scallop genetics and genomics. In Biology, Ecology, Aquaculture and Fisheries, S. E. Shumway and G. P. Parsons. ed., pp. 371–424. Amsterdam: Elsevier. doi:10.1016/B978-0-444-62710-0.00009-2.
  • Leung, T. S., S. M. Naqvi, and C. Leblanc. 1983. Toxicities of two herbicides (Basagran, diquat) and an algicide (Cutrine-plus) to mosquitofish Gambusia affinis. Environ. Pollut. Ser. A 30 (2):153–60. doi:10.1016/0143-1471(83)90012-0.
  • Li, M., X. Ma, Y. Wang, M. Saleem, Y. Yong, and Q. Zhang. 2022. Ecotoxicity of herbicide carfentrazone-ethyl toward Eisenia fetida in soil. Comp. Biochem. Physiol. C Toxicol. Pharmacol. 253:109250. doi:10.1016/j.cbpc.2021.109250.
  • Liu, W., A. Pusino, and C. Gessa. 1992. High-performance liquid chromatographic determination of the herbicide imazapyr residues in water and soil. Sci. Total Environ. 123-124:39–43. doi:10.1016/0048-9697(92)90130-K.
  • Lopes, F. M., A. S. Varela Junior, C. D. Corcini, A. C. da Silva, V. G. Guazzelli, G. Tavares, and C. E. da Rosa. 2014. Effect of glyphosate on the sperm quality of zebrafish Danio rerio. Aquat. Toxicol. 155:322–26. doi:10.1016/j.aquatox.2014.07.006.
  • Maria, M. A., S. R. Castro, L. C. Lange, C. L. F. Siúves, and A. C. Soares. 2020. Ecological risk assessment of glyphosate in surface water when it is used to control floating aquatic macrophytes. An. Acad. Bras. Cienc. 92 (2):e20180445. doi:10.1590/0001-3765202020180445.
  • Marin-Morales, M., B. de Campos Ventura-Camargo, and M. Hoshina. 2013. Toxicity of herbicides: Impact on aquatic and soil biota and human health. In Herbicides: Current Research and Case Studies in Use, A. Price and J. Kelton. ed., London: IntechOpen. doi:10.5772/55851.
  • Marino, M., E. Mele, A. Viggiano, S. L. Nori, R. Meccariello, and A. Santoro. 2021. Pleiotropic outcomes of glyphosate exposure: From organ damage to effects on inflammation, cancer, reproduction and develoment. Int J Mol Sci 22 (22):12606. doi:10.3390/ijms222212606.
  • Merotto, A., Jr, D. L. P. Gazziero, M. C. Oliveira, J. Scursoni, M. A. Garcia, R. Figueroa, and G. M. Turra. 2022. Herbicide use history and perspective in South America. Adv. Weed Sci 40 (Suppl1):e020220050. doi:10.51694/AdvWeedSci/2022;40:seventy-five010.
  • Milesi, M. M., V. Lorenz, M. Durando, M. F. Rossetti, and J. Varayoud. 2021. Glyphosate herbicide: Reproductive outcomes and multigenerational effects. Front Endocrinol 12:672532. doi:10.3389/fendo.2021.672532.
  • Mohammed, A. 2013. Why are early life stages of aquatic organisms more sensitive to toxicants than adults? In New Insights into Toxicity and Drug Testing, S. Gowde. ed., London: IntechOpen. doi:10.5772/55187.
  • Mulder, R., and C. H. Schmidt. 2011. Groundwater, surface water, and sediment monitoring for pesticides and nitrate in Billings, Montana. Available from: http://agr.mt.gov/agr/Programs/Pesticides/Environmental/Groundwater/Reports/PDF/GWbillings11.pdf.
  • Negrisoli, E., D. Martins, D. E. Velini, and W. L. B. Ferrera. 2003. Degradação de diquat em condições de caixa d’água com e sem plantas de egéria. Planta. Daninha 21 (spe):93–98. doi:10.1590/S0100-83582003000400014.
  • Nerozzi, C., S. Recuero, G. Galeati, D. Bucci, M. Spinaci, and M. Yeste. 2020. Effects of Roundup and its main component, glyphosate, upon mammalian sperm function and survival. Sci. Rep. 10 (1):11026. doi:10.1038/s41598-020-67538-w.
  • Neumann, G., R. A. Bombardelli, E. A. Sanches, and C. R. P. Toledo. 2013. Análise espermática computadorizada em peixes de água doce: procedimentos para uso do aplicativo CASA em software livre, p. 87. 1° ed. Toledo, PR: LATRAAC/UNIOESTE.
  • Ordinance MS 518/2004 of the ministry of health. 2004. Accessed January 6 2023. https://bvsms.saude.gov.br/bvs/publicacoes/portaria_518_2004.pdf.
  • Patten, K. 2003. Persistence and non-target impact of imazapyr associated with smooth cordgrass control in an estuary. J. Aquat. Plant Manage. 41:1–6.
  • Paul, E. A., H. A. Simonin, J. Symula, and R. W. Bauer. 1994. The toxicity of diquat, endothall, and fluridone to the early life stages of fish. J Freshw Ecol 9 (3):229–39. doi:10.1080/02705060.1994.9664890.
  • Peillex, C., and M. Pelletier. 2020. The impact and toxicity of glyphosate and glyphosate-based herbicides on health and immunity. J Immunotoxicol 17 (1):163–74. doi:10.1080/1547691X.2020.1804492.
  • Peng, H. -B., J. Shi, X. Gan, J. Zhang, C. Ma, T. Piersma, and D. S. Melville. 2022. Efficient removal of Spartina alterniflora with low negative environmental impacts using imazapyr. Front Mar Sci 9:1054402. doi:10.3389/fmars.2022.1054402.
  • Peruzzo, P. J., A. A. Porta, and A. E. Ronco. 2008. Levels of glyphosate in surface waters, sediments and soils associated with direct sowing soybean cultivation in north pampasic region of Argentina. Environ. Pollut. 156 (1):61–66. doi:10.1016/j.envpol.2008.01.015.
  • Pitelli, R. A., A. T. Bisigatto, I. Kawaguchi, and R. L. C. M. Pitelli. 2011. Doses e horário de aplicação do diquat no controle de Eichhornia crassipes. Planta. Daninha 29 (2):269–77. doi:10.1590/S0100-83582011000200004.
  • Rasband, W. S. 1997-2018. ImageJ, U. S. Bethesda, Maryland, USA: National Institutes of Health. https://imagej.nih.gov/ij/.
  • Rendon-von Osten, J., and R. Dzul-Caamal. 2017. 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 14 (6):595. doi:10.3390/ijerph14060595.
  • RESOLUÇÃO CONAMA Nº 357, DE 17 DE MARÇO DE. 2005. Avaliable from: http://pnqa.ana.gov.br/Publicacao/RESOLUCAO_CONAMA_n_357.pdf
  • Rheinheimer dos Santos, D., J. A. Monteiro de Castro Lima, J. Paranhos Rosa de Vargas, M. Camotti Bastos, M. A. Santanna dos Santos, L. Mondamert, and J. Labanowski. 2020. Pesticide bioaccumulation in epilithic biofilms as a biomarker of agricultural activities in a representative watershed. Environ. Monit. Assess. 192 (6):381. doi:10.1007/s10661-020-08264-8.
  • Ribeiro, Y. M., D. P. Moreira, A. A. Weber, C. F. Sales, R. M. C. Melo, N. Bazzoli, E. Rizzo, and A. L. Paschoalini. 2022. Adverse effects of herbicides in freshwater Neotropical fish: A review. Aquat. Toxicol. 252:106293. doi:10.1016/j.aquatox.2022.106293.
  • Riter, L. S., N. Pai, B. C. Vieira, A. MacInnes, R. Reiss, C. J. Hapeman, and G. R. Jruger. 2021. Conversations about the future of dicamba: The science behind off-target movement. null 69 (48):14435–44. doi:10.1021/acs.jafc.1c05589.
  • Rodrigues, B. N., and F. S. Almeida. 2018. Guia de Herbicidas, p. 764. 7th ed. Londrina -: PR. Edição dos autores.
  • Rodriguez-Gil, J. L., L. Lissemore, K. Solomon, and M. Hanson. 2016. Dissipation of a commercial mixture of polyoxyethylene amine surfactants in aquatic outdoor microcosms: Effect of water depth and sediment organic carbon. Sci. Total Environ. 550:449–58. doi:10.1016/j.scitotenv.2016.01.140.
  • Rodriguez-Gil, J. L., R. Prosser, D. Poirier, L. Lissemore, D. Thompson, M. Hanson, and K. R. Solomon. 2017. Aquatic hazard assessment of MON 0818, a commercial mixture of alkylamine ethoxylates commonly used in glyphosate-containing herbicide formulations. Part 1: Species sensitivity distribution from laboratory acute exposures. Environ. Toxicol. Chem. 36 (2):501–11. doi:10.1002/etc.3559.
  • Ronco, A. E., D. J. G. Marino, M. Abelando, P. Almada, and C. D. Apartin. 2016. Water quality of the main tributaries of the Paraná Basin: Glyphosate and AMPA in surface water and bottom sediments. Environ. Monit. Assess. 188 (8):458. doi:10.1007/s10661-016-5467-0.
  • Sánchez, J. A., A. S. Varela Junior, C. D. Corcini, J. C. da Silva, E. G. Primel, S. Caldas, R. D. Klein, and C. M. Martins. 2017. Effects of Roundup formulations on biochemical biomarkers and male sperm quality of the livebearing Jenynsia multidentata. Chemosphere 177:200–10. doi:10.1016/j.chemosphere.2017.02.147.
  • Santos, E. A. D. 2013. Contaminação por herbicidas em corpos hídricos da microbacia do Córrego Rico (SP) e aspectos toxicológicos de atrazine a juvenis de Piaractus mesopotamicus. Ph.D. diss, Universidade Estadual Paulista.
  • Santos, S. W., P. Gonzalez, B. Cormier, N. Mazzella, B. Bonnaud, S. Morin, C. Clerandeau, B. Morin, and J. Cachot. 2019. A glyphosate-based herbicide induces sub-lethal effects in early life stages and liver cell line of rainbow trout, Oncorhynchus mykiss. Aquat. Toxicol. 216:105291. doi:10.1016/j.aquatox.2019.105291.
  • Serdar, D. 1998. Diquat concentrations in the Steilacoom Lake outlet (Chamber creek) following Reward® applications during 1997. Waterbody WA-12-1110 and WA 12-9080, Ecol Rep 98–332. Avaliable from: https://apps.ecology.wa.gov/publications/documents/98322.pdf
  • Sesin, V., R. L. Dalton, C. Boutin, S. A. Robinson, A. J. Bartlett, and F. R. Pick. 2018. Macrophytes are highly sensitive to the herbicide diquat dibromide in test systems of varying complexity. Ecotoxicol. Environ. Saf. 165:325–33. doi:10.1016/j.ecoenv.2018.08.033.
  • Sewell, W. D. 1970. Diquat residues in two New York lakes. Proceedings, Northeast Weed Control Conference, Farmington, NY, USA, November 7–9, pp 281–82.
  • Shaifuddin, S. N. M., H. Hussain, H. F. Hassan, N. C. Dom, and R. I. Md Rashid. 2017. Degradation of imazapyr and imazapic in aqueous solutions and soil under direct sunlight. Malaysian J. Anal. Sci 21:1074–79. doi:10.17576/mjas-2017-2105-09.
  • Siemering, G. S., J. D. Hayworth, and B. K. Greenfield. 2008. Assessment of potential aquatic herbicide impacts to California aquatic ecosystems. Arch. Environ. Contam. Toxicol. 55 (3):415–31. doi:10.1007/s00244-008-9137-2.
  • Silveira, T., A. S. Varela Junior, C. D. Corcini, W. B. Domingues, M. Remião, L. Santos, B. Barreto, I. Lessa, D. Martins, R. T. Boyle, et al. 2019. Roundup® herbicide decreases quality parameters of spermatozoa of silversides Odontesthes humensis. Bull Environ Contam Toxicol 102 (1):1–6. doi:10.1007/s00128-018-2508-0.
  • Simsiman, G. V., and G. Chesters. 1976. Persistence of diquat in the aquatic environment. Water Res. 10 (2):105–12. doi:10.1016/0043-1354(76)90107-X.
  • Skogerboe, J. G., K. D. Getsinger, and L. A. M. Glomski. 2006. Efficacy of diquat on submersed plants treated under simulated flowing water conditions. J. Aquat. Plant Manage. 44: 122–25. Avaliable from. https://apms.org/wp-content/uploads/japm-44-02-122.pdf
  • Souza, E. L. C., J. T. Filho, E. D. Velini, J. R. M. Silva, K. C. Tonello, L. L. Foloni, A. C. Barbosa, and T. A. Freato. 2020. Water hyacinth control by glyphosate herbicide and its impact on water quality. J. Water Resource Prot 12 (01):60–73. doi:10.4236/jwarp.2020.121004.
  • Souza, E. L. C., L. L. Foloni, J. T. Filho, E. D. Velini, L. M. Siono, and J. R. M. Silva. 2017. Half-Life of glyphosate on the control of water hyacinths in water tanks. J. Water Resource Prot 9 (05):470–81. doi:10.4236/jwarp.2017.95030.
  • Stahl, B. A., R. Peuß, B. McDole, A. Kenzior, J. B. Jaggard, K. Gaudenz, J. Krishnan, S. E. McGaugh, E. R. Duboue, A. C. Keene, et al. 2019. Stable transgenesis in Astyanax mexicanus using the Tol2 transposase system. Dev. Dyn. 248 (8):679–87. doi:10.1002/dvdy.32.
  • Stradtman, S. C., and J. L. Freeman. 2021. Mechanisms of neurotoxicity associated with exposure to the herbicide atrazine. Toxics 9 (9):207. doi:10.3390/toxics9090207.
  • Strilbytska, O. M., U. V. Semaniuk, T. R. Strutynsksa, N. I. Burdyliuk, S. Tsiumpala, V. Bubalo, and O. Lushchak. 2022. Herbicide Roundup shows toxic effects in nontarget organism Drosophila. Arch. Insect Biochem. Physiol. 110 (4):e21893. doi:10.1002/arch.21893.
  • Thum, R. A., G. M. Chorak, R. M. Newman, J. A. Eltawely, J. Latimore, E. Elgin, and S. Parks. 2020. Genetic diversity and differentiation in populations of invasive Eurasian (Myriophyllum spicatum) and hybrid (Myriophyllum spicatum × Myriophyllum sibiricum) watermilfoil. Invasive Plant Sci. Manage 13 (2):59–67. doi:10.1017/inp.2020.12.
  • Torres-Badia, M., S. Solar-Malaga, D. Martin-Hidalgo, A. Hurtado de Llera, A. Gomez-Candelo, L. J. Garcia-Marin, L. González-Fernández, and M. J. Bragado. 2021. Impaired mammalian sperm function and lower phosphorylation signaling caused by the herbicide Roundup® Ultra Plus are due to its surfactant component. Theriogenology 15 (172):55–66. doi:10.1016/j.theriogenology.2021.05.026.
  • Trudeau, V. L. P. T., W. S. Zhang, S. TReynaud, V. S. Navarro-Martin, L. Langlois, and V. S. Langlois. 2020. Agrochemicals disrupt multiple endocrine axes in amphibians. Mol. Cell. Endocrinol. 513:110861. doi:10.1016/j.mce.2020.110861.
  • Vryzas, Z. 2018. Pesticide fate in soil-sediment-water environment in relation to contamination preventing actions. Curr. Opin. Environ. Sci. Health 4:5–9. doi:10.1016/j.coesh.2018.03.001.
  • Wang, N., J. M. Besser, D. R. Buckler, J. L. Honegger, C. G. Ingersoll, B. T. Johnson, M. L. Kurtzweil, J. MacGregor, and M. J. McKee. 2005. Influence of sediment on the fate and toxicity of a polyethoxylated tallow amine surfactant system (MON 0818) in aquatic microcosms. Chemosphere 59:545–51. doi:10.1016/j.chemosphere.2004.12.009.
  • Wang, S., B. Seiwert, M. Kästner, A. Miltner, A. Schäffer, T. Reemtsma, Q. Yang, and K. M. Nowak. 2016. (Bio)degradation of glyphosate in water-sediment microcosms - a stable isotope co-labeling approach. Water Res. 99:91–100. doi:10.1016/j.watres.2016.04.041.
  • Webster, T. M. U., L. V. Laing, H. Florance, and E. M. Santos. 2014. Effects of glyphosate and its formulation, roundup, on reproduction in Zebrafish (Danio rerio). Environ. Sci. Technol. 48 (2):1271–79. doi:10.1021/es404258h.
  • Weltje, L., P. Simpson, M. Gross, M. Crane, and J. R. Wheeler. 2013. Comparative acute and chronic sensitivity of fish and amphibians: A critical review of data. Environ. Toxicol. Chem. 32 (5):984–94. doi:10.1002/etc.2149.
  • Wilson-Leedy, J. G., and R. L. Ingermann. 2007. Development of a novel CASA system based on open source software for characterization of zebrafish sperm motility parameters. Theriogenology 67 (3):661–72. doi:10.1016/j.theriogenology.2006.10.003.
  • Yastrub, T. O., S. T. Omelchuk, and A. M. Yastrub. 2020. Dermal absorption of diquat and potential occupational risk. Wiadomości Lekarskie 73 (7):1459–64. doi:10.36740/WLek202007127.
  • Yasui, G. S., N. Ferreira Do Nascimento, M. Pereira-Santos, A. P. dos Santos Silva, G. C. Z. Coelho, J. A. Visintin, F. Porto-Foresti, L. S. O. Nakaghi, N. C. Vianna, G. B. Carvalho, et al. 2022. Establishing a model fish for the neotropical region: The case of the yellowtail tetra Astyanax altiparanae in advanced biotechnology. Front Genet 13:903990. doi:10.3389/fgene.2022.903990.
  • Yasui, G. S., J. A. Senhorini, E. Shimoda, M. Pereira-Santos, L. S. O. Nakaghi, T. Fujimoto, L. Arias-Rodrigues, and L. A. Silva. 2015. Improvement of gamete quality and its shortterm storage: An approach for biotechnology in laboratory fish. Animal 9 (3):464–70. doi:10.1017/S1751731114002511.
  • Yeo, R. 1967. Dissipation of diquat and paraquat and effects on aquatic weeds and fish. Weeds 15 (1):42–46. doi:10.2307/4041065.
  • Zaller, J. G., and C. A. Brühl. 2019. Editorial: Non-target effects of pesticides on organisms inhabiting agroecosystems. Front. Environ. Sci 7:75. doi:10.3389/fenvs.2019.00075.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.