Literature DB >> 24344394

Development and application of LC–APCI–MS method for biomonitoring of animal and human exposure to imidacloprid.

Matthaios P Kavvalakis, Manolis N Tzatzarakis, Eleftheria P Theodoropoulou, Emmanouil G Barbounis, Andreas K Tsakalof, Aristidis M Tsatsakis.   

Abstract

Imidacloprid (IMI) is a relatively new neuro-active neonicotinoid insecticide and nowadays one of the largest selling insecticides worldwide. In the present study a LC–APCI–MS based method was developed and validated for the quantification of imidacloprid and its main metabolite 6-chloronicotinic acid (6- CINA) in urine and hair specimens. The method was tested in biomonitoring of intentionally exposed animals and subsequently applied for biomonitoring of Cretan urban and rural population. The developed analytical method comprises two main steps of analytes isolation from specimen (solid– liquid extraction with methanol for hair, liquid–liquid extraction with methanol for urine) and subsequent instrumental analysis by LC–APCI–MS. The developed method was applied for the monitoring of IMI and 6-ClNA in hair and urine of laboratory animals (rabbits) intentionally fed with insecticide at low or high doses (40 and 80 mg kg(-1) weight d(-1) respectively) for 24 weeks. The analytes were detected in the regularly acquired hair and urine specimens and their found levels were proportional to the feeding dose and time of exposure with the exception of slight decline of IMI levels in high dose fed rabbits after 24 weeks of feeding. This decline can be explained by the induction of IMI metabolizing enzymes by the substrate. After testing on animal models the method was applied for pilot biomonitoring of Crete urban (n = 26) and rural (n = 32) population. Rural but not urban population is exposed to IMI with 21 positive samples (65.6%) and found median concentration 0.03 ng mg(-1). Maximum concentration detected was 27 ng mg(-1)

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Year:  2013        PMID: 24344394     DOI: 10.1016/j.chemosphere.2013.09.087

Source DB:  PubMed          Journal:  Chemosphere        ISSN: 0045-6535            Impact factor:   7.086


  6 in total

1.  Imidacloprid exposure cause the histopathological changes, activation of TNF-α, iNOS, 8-OHdG biomarkers, and alteration of caspase 3, iNOS, CYP1A, MT1 gene expression levels in common carp (Cyprinus carpio L.).

Authors:  Selçuk Özdemir; Serdar Altun; Harun Arslan
Journal:  Toxicol Rep       Date:  2017-12-27

2.  LC-ESI/MS/MS analysis of neonicotinoids in urine of very low birth weight infants at birth.

Authors:  Go Ichikawa; Ryota Kuribayashi; Yoshinori Ikenaka; Takahiro Ichise; Shouta M M Nakayama; Mayumi Ishizuka; Kumiko Taira; Kazutoshi Fujioka; Toshimi Sairenchi; Gen Kobashi; Jean-Marc Bonmatin; Shigemi Yoshihara
Journal:  PLoS One       Date:  2019-07-01       Impact factor: 3.240

3.  Investigating the potential protective effects of natural product quercetin against imidacloprid-induced biochemical toxicity and DNA damage in adults rats.

Authors:  Abdel Moniem S Hassan; Fatma I Abo El-Ela; Ayman Moustafa Abdel-Aziz
Journal:  Toxicol Rep       Date:  2019-07-22

4.  Effect of agricultural pesticide on precocious puberty in urban children: an exploratory study.

Authors:  Junghwan Suh; Han Saem Choi; Ahreum Kwon; Hyun Wook Chae; Ho-Seong Kim
Journal:  Clin Exp Pediatr       Date:  2019-12-06

5.  Human metabolism and urinary excretion of seven neonicotinoids and neonicotinoid-like compounds after controlled oral dosages.

Authors:  Sonja A Wrobel; Daniel Bury; Heiko Hayen; Holger M Koch; Thomas Brüning; Heiko U Käfferlein
Journal:  Arch Toxicol       Date:  2021-10-13       Impact factor: 5.153

6.  In Vitro Investigation of the Effects of Imidacloprid on AChE, LDH, and GSH Levels in the L-929 Fibroblast Cell Line.

Authors:  Çiğdem Sevİm; Ali Taghİzadehghalehjoughİ; Mehtap Kara
Journal:  Turk J Pharm Sci       Date:  2020-10-30
  6 in total

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