192
Views
6
CrossRef citations to date
0
Altmetric
Original Articles

The progressive alteration of urine metabolomic profiles of rats following long-term and low-dose exposure to permethrin

, , , , &
Pages 94-99 | Received 17 Aug 2019, Accepted 20 Nov 2019, Published online: 01 Dec 2019

References

  • Beckwith-Hall, B., et al., 1998. Nuclear magnetic resonance spectroscopic and principal components analysis investigations into biochemical effects of three model hepatotoxins. Chemical research in toxicology, 11 (4), 260–272.
  • Bradberry, S.M., et al., 2005. Poisoning due to pyrethroids. Toxicological reviews, 24 (2), 93–106.
  • Bradford, B.U., et al., 2008. Metabolomic profiling of a modified alcohol liquid diet model for liver injury in the mouse uncovers new markers of disease. Toxicology and applied pharmacology, 232 (2), 236–243.
  • Breckenridge, C.B., et al., 2009. Evidence for a separate mechanism of toxicity for the Type I and the Type II pyrethroid insecticides. NeuroToxicology, 30 (Suppl 1), S17–S31.
  • Cantalamessa, F., 1993. Acute toxicity of two pyrethroids, permethrin, and cypermethrin in neonatal and adult rats. Archives of toxicology, 67 (7), 510–513.
  • Casida, J., and Quistad, G., 1998. Golden age of insecticide research: past, present, or future?. Annual review of entomology, 43 (1), 1–16.
  • Choi, J.S., and Soderlund, D.M., 2006. Structure-activity relationships for the action of 11 pyrethroid insecticides on rat Na v 1.8 sodium channels expressed in Xenopus oocytes. Toxicology and applied pharmacology, 211 (3), 233–244.
  • Chrustek, A., et al., 2018. Current research on the safety of pyrethroids used as insecticides. Medicina (Kaunas), 54 (4), 61.
  • DeMicco, A., et al., 2010. Developmental neurotoxicity of pyrethroid insecticides in zebrafish embryos. Toxicological sciences, 113 (1), 177–186.
  • Dunn, W.B., and Ellis, D.I., 2005. Metabolomics: current analytical platforms and methodologies. Trends in analytical chemistry, 24, 285–294.
  • Ellman, G.L., et al., 1961. A new and rapid colorimetric determination of acetylcholinesterase activity. Biochemical pharmacology, 7 (2), 88–95.
  • Fenske, R.A., et al., 2002. Assessment of organophosphorus pesticide exposures in the diets of preschool children in Washington State. Journal of exposure science & environmental epidemiology, 12 (1), 21–28.
  • Field, L.M., et al., 2017. Voltage-gated sodium channels as targets for pyrethroid insecticides. European biophysics journal, 46 (7), 675–679.
  • Gartland, K.P.R., Bonner, F.W., and Nicholson, J.K., 1989. Investigations into the biochemical effects of region-specific nephrotoxins. Molecular pharmacology, 35 (2), 242–250.
  • Holmes, E., et al., 1998. Development of a model for classification of toxin-induced lesions using 1H NMR spectroscopy of urine combined with pattern recognition. NMR in biomedicine, 11 (4–5), 235–244.
  • Kolaczinski, J., and Curtis, C., 2004. Chronic illness as a result of low-level exposure to synthetic pyrethroid insecticides: a review of the debate. Food and chemical toxicology, 42 (5), 697–706.
  • Lawrence, L.J., and Casida, J.E., 1982. Pyrethroid toxicology: Mouse intracerebral structure-toxicity relationships. Pesticide biochemistry and physiology, 18 (1), 9–14.
  • Lawrence, L.J., and Casida, J.E., 1983. Stereospecific action of pyrethroid insecticides on the gamma-aminobutyric acid receptor-ionophore complex. Science, 221 (4618), 1399–1401.
  • Lei, R., et al., 2008. Integrated metabolomic analysis of the nano-sized copper particle-induced hepatotoxicity and nephrotoxicity in rats: a rapid in vivo screening method for nanotoxicity. Toxicology and applied pharmacology, 232 (2), 292–301.
  • Liang, Y.J., et al., 2013. A metabonomic investigation of the effects of 60 days exposure of rats to two types of pyrethroid insecticides. Chemico-Biological interactions, 206 (2), 302–308.
  • Liang, Y.J., et al., 2012. Applying biofluid metabonomic techniques to analyze the combined subchronic toxicity of propoxur and permethrin in rats. Bioanalysis, 4 (24), 2897–2907.
  • Michael, R.P., et al., 2005. High resolution 1H NMR-based metabolomics indicates a neurotransmitter cycling deficit in cerebral tissue from a mouse model of batten disease. Journal of biological chemistry, 280, 42508–42514.
  • Michelangeli, F., et al., 1990. The conformation of pyrethroids bound to lipid bilayers. Biochimica et biophysica acta (bba) - biomembranes, 1028 (1), 49–57.
  • Morgan, M.K., et al., 2007. An observational study of 127 preschool children at their homes and daycare centers in Ohio: environmental pathways to cis-and trans-permethrin exposure. Environmental research, 104 (2), 266–274.
  • Nicholson, J., Lindon, J., and Holmes, E., 1999. Metabonomics': understanding the metabolic responses of living systems to pathophysiological stimuli via multivariate statistical analysis of biological NMR spectroscopic data. Xenobiotica, 29 (11), 1181–1189.
  • Nicolopoulou-Stamati, P., et al., 2016. Chemical pesticides and human health: the urgent need for a new concept in agriculture. Frontiers in public health, 4, 148.
  • Prasanthi, K., and Rajini, P., 2005. Fenvalerate-induced oxidative damage in rat tissues and its attenuation by dietary sesame oil. Food and chemical toxicology, 43, 299–306.
  • Reffstrup, T.K., Larsen, J.C., and Meyer, O., 2010. Risk assessment of mixtures of pesticides. Current approaches and future strategies. Regulatory toxicology and pharmacology, 56 (2), 174–192.
  • Sakr, S., Mahran, H., and Okdah, Y., 2001. Renal lesions induced by pyrethroid inhalation in albino rats. Journal of biological sciences, 1, 1066–1068.
  • Samuelsson, L., et al., 2006. Using NMR metabolomics to identify responses of an environmental estrogen in blood plasma of fish. Aquatic toxicology, 78 (4), 341–349.
  • Spencer, J., and O’Malley, M., 2006. Pyrethroid illnesses in California, 1996–2002. Reviews of environmental contamination and toxicology, 186 (2002), 57–72.
  • Soderlund, D.M., et al., 2002. Mechanisms of pyrethroid neurotoxicity: implications for cumulative risk assessment. Toxicology, 171 (1), 3–59.
  • Trygg, J., Holmes, E., and Lundstedt, T., 2007. Chemometrics in metabonomics. Journal of proteome research, 6 (2), 469–479.
  • Tsang, T.A., et al., 2006. Metabolic characterization of the R6/2 transgenic mouse model of Huntington’s disease by high-resolution MAS 1H NMR spectroscopy. Journal of proteome research, 5 (3), 483–492.
  • Vais, H., et al., 2001. The molecular interactions of pyrethroid insecticides with insect and mammalian sodium channels. Pest management science, 57 (10), 877–888.
  • Wang, H.P., et al., 2009. Metabolic profiles of serum from rats after subchronic exposure to chlorpyrifos and carbaryl. Chemical research in toxicology, 22 (6), 1026–1033.
  • Wang, H.P., et al., 2011. Changes in metabolic profiles of urine from rats following chronic exposure to anticholinesterase pesticides. Pesticide biochemistry and physiology, 101 (3), 232–239.
  • Wang, P., et al., 2017. Subchronic toxicity of low dose propoxur, permethrin, and their combination on the redox status of rat liver. Chemico-biological interactions, 272, 21–27.
  • Waters, N.J., et al., 2006. Integrated metabonomic analysis of bromobenzene-induced hepatotoxicity: novel induction of 5-oxoprolinosis. Journal of proteome research, 5 (6), 1448–1459.
  • Waters, N.J., et al., 2005. Metabonomic deconvolution of embedded toxicity: application to thioacetamide hepato- and nephrotoxicity. Chemical research in toxicology, 18 (4), 639–654.
  • WHO, 2011. Report No. 14994: Combined chronic toxicity/carcinogenicity potential of permethrin technical in Wistar rats [online]. Unpublished report sponsored by M/s Tagros Chemicals India Limited, Chennai, India. Available from: http://www.google.com.hk/url?sa=t&rct=j&q=&esrc=s&source=web&cd=2&cad=rja&uact=8&ved=0ahUKEwjhiKGl26zYAhWBOZQKHWcjDA4QFggtMAE&url=http%3A%2F%2Fwww.who.int%2Fwhopes%2Fquality%2FPermethrin_25_75_specs_eval_WHO_Sep_2011.pdf&usg=AOvVaw2OcxON0xeovJ-lQjqpVd8o) [Access Sep 2011].
  • Wold, S., Esbensen, K., and Geladi, P., 1987. Principal component analysis. Chemometrics and intelligent laboratory systems, 2 (1–3), 37–52.

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.