126
Views
0
CrossRef citations to date
0
Altmetric
Original Articles

Cholinesterase homozygous genotype as susceptible biomarker of hypertriglyceridaemia for pesticide-exposed agricultural workers

, , , , , , , , , & ORCID Icon show all
Pages 335-342 | Received 13 Nov 2020, Accepted 13 Feb 2021, Published online: 07 Mar 2021

References

  • Banerjee, M., and Ray, A.K., 2002. The role of thyroid hormone on phenylhydrazine hydrochloride mediated inhibitory effects on blood acetylcholinesterase: an in vivo and in vitro study. Journal of biochemical and molecular toxicology, 16 (4), 162–168.
  • Benyamin, B., et al., 2011. GWAS of butyrylcholinesterase activity identifies four novel loci, independent effects within BCHE and secondary associations with metabolic risk factors. Human molecular genetics, 20 (22), 4504–4514.
  • Bulat, P., Somaruga, C., and Colosio, C., 2006. Occupational health and safety in agriculture: situation and priorities at the beginning of the third millennium. La medicina del lavoro, 97 (2), 420–429.
  • Campos, E., and Freire, C., 2016. Exposure to non-persistent pesticides and thyroid function: a systematic review of epidemiological evidence. International journal of hygiene and environmental health, 219 (6), 481–497.
  • Carvalho, D.P., and Dupuy, C., 2017. Thyroid hormone biosynthesis and release. Molecular and cellular endocrinology, 458, 6–15.
  • Chaves, T.J., et al., 2013. 116A and K BCHE gene variants associated with obesity and hypertriglyceridemia in adolescents from Southern Brazil. Chemico-biological interactions, 203 (1), 341–343.
  • Chen, Y.-C., et al., 2019. Serum level and activity of butylcholinesterase: a biomarker for post-stroke dementia. Journal of clinical medicine, 8, 1778.
  • Cotton, J., et al., 2018. Cholinesterase research outreach project (CROP): point of care cholinesterase measurement in an Australian agricultural community. Environmental health, 17 (1), 31–31.
  • Curl, C.L., et al., 2020. Synthetic pesticides and health in vulnerable populations: agricultural workers. Current environmental health reports, 7 (1), 13–29.
  • Ertek, S., 2018. High-density lipoprotein (HDL) dysfunction and the future of HDL. Current vascular pharmacology, 15, 30–39.
  • Fiorito, M., et al., 2007. Interaction of DIO2 T92A and PPARgamma2 P12A polymorphisms in the modulation of metabolic syndrome. Obesity (obesity), 15 (12), 2889–2895.
  • Freake, H.C., and Moon, Y.K., 2003. Hormonal and nutritional regulation of lipogenic enzyme mRNA levels in rat primary white and brown adipocytes. Journal of nutritional science and vitaminology, 49 (1), 40–46.
  • Gereben, B., et al., 2008. Cellular and molecular basis of deiodinase-regulated thyroid hormone signaling. Endocrine reviews, 29 (7), 898–938.
  • Howard, T.D., et al., 2010. Evaluation of candidate genes for cholinesterase activity in farmworkers exposed to organophosphorus pesticides: association of single nucleotide polymorphisms in BCHE. Environmental health perspectives, 118 (10), 1395–1399.
  • Huang, H.S., et al., 2017. Increased risk for hypothyroidism after anticholinesterase pesticide poisoning: a nationwide population-based study. Endocrine, 57 (3), 436–444.
  • Jacobsen, H., et al., 2004. Repeated dose 28-day oral toxicity study in Wistar rats with a mixture of five pesticides often found as residues in food: alphacypermethrin, bromopropylate, carbendazim, chlorpyrifos and mancozeb. Food and chemical toxicology: an international journal published for the British industrial biological research association, 42 (8), 1269–1277.
  • Kim, C.W., et al., 2017. Acetyl CoA carboxylase inhibition reduces hepatic steatosis but elevates plasma triglycerides in mice and humans: a bedside to bench investigation. Cell metabolism, 26 (2), 394.e6–406.e6.
  • Kim, H.J., et al., 2016. Triiodothyronine levels are independently associated with metabolic syndrome in euthyroid middle-aged subjects. Endocrinology and metabolism, 31 (2), 311–319.
  • Kim, Y.-J., et al., 2005. Hormones and nutrients regulate acetyl-CoA carboxylase promoter I in rat primary hepatocytes. Journal of nutritional science and vitaminology, 51 (2), 124–128.
  • Kongtip, P., et al., 2019. Thyroid hormones in conventional and organic farmers in Thailand. International journal of environmental research and public health, 16 (15), 2704.
  • Kongtip, P., et al., 2018. A cross-sectional investigation of cardiovascular and metabolic biomarkers among conventional and organic farmers in Thailand. International journal of environmental research and public health, 15 (11), 2590.
  • Kongtip, P., et al., 2020. Longitudinal study of metabolic biomarkers among conventional and organic farmers in Thailand. International journal of environmental research and public health, 17 (11), 4178.
  • Kori, R.K., et al., 2019. Cholinesterase inhibition and its association with hematological, biochemical and oxidative stress markers in chronic pesticide exposed agriculture workers. Journal of biochemical and molecular toxicology, 33 (9), e22367.
  • Kusunoki, J., Kanatani, A., and Moller, D.E., 2006. Modulation of fatty acid metabolism as a potential approach to the treatment of obesity and the metabolic syndrome. Endocrine, 29 (1), 91–100.
  • Lee, J.J., et al., 2016. Thyroid function and cardiovascular disease risk factors in euthyroid adults: a cross-sectional and longitudinal study. Clinical endocrinology, 85 (6), 932–941.
  • Lima, J.K., et al., 2013. 1914G variant of BCHE gene associated with enzyme activity, obesity and triglyceride levels. Gene, 532 (1), 24–26.
  • Liu, X., et al., 2012. Association study of candidate gene polymorphisms with amnestic mild cognitive impairment in a Chinese population. PLoS one., 7 (7), e41198.
  • Liu, Y., et al., 2019. A rapid improved multiplex ligation detection reaction method for the identification of gene mutations in hereditary hearing loss. PLoS one, 14 (4), e0215212.
  • Lozano-Paniagua, D., et al., 2016. Activity and determinants of cholinesterases and paraoxonase-1 in blood of workers exposed to non-cholinesterase inhibiting pesticides. Chemico-biological interactions, 259 (Pt B), 160–167.
  • Maia, A.L., et al., 2005. Type 2 iodothyronine deiodinase is the major source of plasma T3 in euthyroid humans. Journal of clinical investigation, 115, 2524–2533.
  • Manfo, F.P.T., et al., 2012. Effect of agropesticides use on male reproductive function: a study on farmers in Djutitsa (Cameroon). Environmental toxicology, 27 (7), 423–432.
  • Mohammad, N., et al., 2018. Pesticide management approach towards protecting the safety and health of farmers in Southeast Asia. Reviews on environmental health, 33 (2), 123–134.
  • Momin, M., et al., 2017. Relationship between plasma homocysteine level and lipid profiles in a community-based Chinese population. Lipids in health and disease, 16 (1), 54.
  • Mostafalou, S., and Abdollahi, M., 2017. Pesticides: an update of human exposure and toxicity. Archives of toxicology, 91 (2), 549–599.
  • Mullur, R., Liu, Y.-Y., and Brent, G.A., 2014. Thyroid hormone regulation of metabolism. Physiological reviews, 94 (2), 355–382.
  • Musunuru, K., and Kathiresan, S., 2016. Surprises from genetic analyses of lipid risk factors for atherosclerosis. Circulation research, 118 (4), 579–585.
  • Nassar, P.P.M., and Ribeiro, M.G., 2020. Considerations for cholinesterase biomonitoring in flower and ornamental plant greenhouse workers. Science of the total environment, 711, 135228–135228.
  • Oda, E., 2015. Associations between serum cholinesterase and incident hyper-LDL cholesterolemia, hypertriglyceridemia and hypo-HDL cholesterolemia as well as changes in lipid levels in a health screening population. Atherosclerosis, 241 (1), 1–5.
  • Panicker, V., et al., 2008. A common variation in deiodinase 1 gene DIO1 is associated with the relative levels of free thyroxine and triiodothyronine. The journal of clinical endocrinology and metabolism, 93 (8), 3075–3081.
  • Piccoli, C., et al., 2016. Pesticide exposure and thyroid function in an agricultural population in Brazil. Environmental research, 151, 389–398.
  • Pope, C.N., and Brimijoin, S., 2018. Cholinesterases and the fine line between poison and remedy. Biochemical pharmacology, 153, 205–216.
  • Pothu, U.K., Thammisetty, A.K., and Nelakuditi, L.K., 2019. Evaluation of cholinesterase and lipid profile levels in chronic pesticide exposed persons. Journal of family medicine and primary care, 8 (6), 2073–2078.
  • Ramírez-Santana, M., et al., 2018. Biomonitoring of blood cholinesterases and acylpeptide hydrolase activities in rural inhabitants exposed to pesticides in the Coquimbo Region of Chile. PloS one, 13 (5), e0196084.
  • Saad-Hussein, A., et al., 2019. Effects of zinc supplementation on oxidant/antioxidant and lipids status of pesticides sprayers. Journal of complementary & integrative medicine, 17 (1), 20190001.
  • Sánchez, L.H., et al., 2015. Laboratory genetic-based reference values for cholinesterase activity in a Colombian population: a step forward in personalized diagnostics. Biomedica: revista del instituto nacional de salud, 35, 20–29.
  • Scacchi, R., Ruggeri, M., and Corbo, R.M., 2011. Variation of the butyrylcholinesterase (BChE) and acetylcholinesterase (AChE) genes in coronary artery disease. Clinica chimica acta; international journal of clinical chemistry, 412 (15–16), 1341–1344.
  • Toft, G., Flyvbjerg, A., and Bonde, J.P., 2006. Thyroid function in Danish greenhouse workers. Environmental health, 5 (1), 32.
  • Van der Deure, W.M., et al., 2009. The effect of genetic variation in the type 1 deiodinase gene on the interindividual variation in serum thyroid hormone levels: an investigation in healthy Danish twins. Clinical endocrinology, 70 (6), 954–960.
  • Verloop, H., et al., 2014. Genetics in endocrinology: genetic variation in deiodinases: a systematic review of potential clinical effects in humans. European journal of endocrinology, 171 (3), R123–R135.
  • Wang, M.M., et al., 2020. Gender heterogeneity in dyslipidemia prevalence, trends with age and associated factors in middle age rural Chinese. Lipids in health and disease, 19 (1), 135.
  • Wouters, H.J.C.M., et al., 2017. No effect of the Thr92Ala polymorphism of deiodinase-2 on thyroid hormone parameters, health-related quality of life, and cognitive functioning in a large population-based cohort study. Thyroid, 27 (2), 147–155.
  • Wu, Y., Xi, X., Tang, X., Luo, D., Gu, B., Lam, S. K., Vitousek, P. M. & Chen, D. 2018. Policy distortions, farm size, and the overuse of agricultural chemicals in China. Proceedings of the national academy of sciences of the United States of America, 115, 7010–7015.
  • Xia, S.F., et al., 2015. Role of thyroid hormone homeostasis in obesity-prone and obesity-resistant mice fed a high-fat diet. Metabolism: clinical and experimental, 64 (5), 566–579.
  • Xiao, X., Clark, J.M., and Park, Y., 2017. Potential contribution of insecticide exposure and development of obesity and type 2 diabetes. Food and chemical toxicology, 105, 456–474.
  • Xu, B., et al., 2016. Elevated thyroid stimulating hormone levels are associated with metabolic syndrome in a Chinese community-based population of euthyroid people aged 40 years and older. Journal of biomedical research, 30, 476–482.

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.