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org/10.1016/j.tox.2008.03.018
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and the enantioselectivity of bifenthrin in trophoblast: maternal-fetal health risk of chiral
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75. Jin Y, Wang J, Pan X et al (2015) Enantioselective disruption of the endocrine system by
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21954
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water bodies of the Pampa Ondulada, Argentina. Bull Environ Contam Toxicol 75:820–826.
https://doi.org/10.1007/s00128-005-0824-7
59. Woudneh MB, Oros DR (2006) Pyrethroids, pyrethrins, and piperonyl butoxide in sediments
by high-resolution gas chromatography/high-resolution mass spectrometry. J Chromatogr A
1135:71–77. https://doi.org/10.1016/j.chroma.2006.09.017
60. Lao WJ, Arye G, Ernst F, Xu YP, Bondarenko S, Haver D, Kabashima J, Gan J (2008)
Reduction of pyrethroid runoff from a commercial nursery. In: Synthetic pyrethroids.
American Chemical Society, Washington, pp 428–446
61. Li H, Wei Y, Lydy MJ, You J (2014) Inter-compartmental transport of organophosphate and
pyrethroid pesticides in South China: implications for a regional risk assessment. Environ
Pollut 190:19–26. https://doi.org/10.1016/j.envpol.2014.03.013
62. Delgado-Moreno L, Lin K, Veiga-Nascimento R, Gan J (2011) Occurrence and toxicity of
three classes of insecticides in water and sediment in two southern California coastal watersheds. J Agric Food Chem 59:9448–9456. https://doi.org/10.1021/jf202049s
63. Maund SJ, Campbell PJ, Giddinqs JM et al (2011) Ecotoxicology of synthetic pyrethroids.
In: Matsuo N, Mori T (eds) Pyrethroids. Topics in current chemistry. Springer, Berlin,
pp 137–166
64. Santoro MM (2014) Zebrafish as a model to explore cell metabolism. Trends Endocrinol
Metab 25:546–554. https://doi.org/10.1016/j.tem.2014.06.003
65. Sardela VF, Anselmo CS, Nunes IKC, Carneiro GRA, Santos GRC, Carvalho AR, Labanca
BJ, Silva D, Ribeiro WD, Araujo ALD, Padilha MC, Lima CKF, Sousa VP, Aquino Neto FR,
Pereira HMG (2018) Zebrafish (Danio rerio) water tank model for the investigation of drug
metabolism: progress, outlook and challenges. Drug Test Anal 10:1657–1669. https://doi.org/
10.1002/dta.2523
66. Schleier III JJ, Peterson RKD (2011) Pyrethrins and pyrethroid insecticides. In: Lopez O,
Fernándes-Bolaños JG (eds) Green trends in insect control. RSC Green Chemistry No. 11.
Royal Society of Chemistry, London, pp 94–131
67. Bradberry SM, Cage SA, Proudfoot AT, Vale JA (2016) Poisoning due to Pyrethroids. Toxicol
Rev 24:93–106. https://doi.org/10.2165/00139709-200524020-00003
68. Patel M, Patil P (2016) Synthetic pyrethroids: toxicity and metabolism. IOSR J Agric Vet Sci
9:55–60. https://doi.org/10.9790/2380-0910015560
69. Wang X, Martínez MA, Dai M et al (2016) Permethrin-induced oxidative stress and toxicity
and metabolism. A review. Environ Res 149:86–104. https://doi.org/10.1016/j.envres.2016.
05.003
70. Jin Y, Liu J, Wang L et al (2012) Permethrin exposure during puberty has the potential to
enantioselectively induce reproductive toxicity in mice. Environ Int 42:144–151. https://doi.
org/10.1016/j.envint.2011.05.020
71. Wang J, Xiao S, Yu D-E et al (2018) Exposure to beta-cypermethrin impairs the reproductive
function of female mice. Regul Toxicol Pharmacol 95:385–394. https://doi.org/10.1016/j.
yrtph.2018.04.015
72. Marettova E, Maretta M, Legáth J (2017) Effect of pyrethroids on female genital system.
Review. Anim Reprod Sci 184:132–138. https://doi.org/10.1016/j.anireprosci.2017.07.007
73. Nakajima T, Yanagiba Y, Okamura A et al (2008) Permethrin may induce adult male mouse
reproductive toxicity due to cis isomer not trans isomer. Toxicology 248:136–141. https://doi.
org/10.1016/j.tox.2008.03.018
74. Zhao M, Zhang Y, Zhuang S, Zhang Q, Lu CLW (2014) Disruption of the hormonal network
and the enantioselectivity of bifenthrin in trophoblast: maternal-fetal health risk of chiral
pesticides. Environ Sci Technol 48:8109–8116. https://doi.org/10.1021/es501903b
75. Jin Y, Wang J, Pan X et al (2015) Enantioselective disruption of the endocrine system by
cis-bifenthrin in the male mice. Environ Toxicol 30:746–754. https://doi.org/10.1002/tox.
21954
Stereoselectivity and Environmental Behaviour of Pyrethroids
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