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Occupational exposure of workers to pesticides: Toxicogenetics and susceptibility gene polymorphisms

Abstract

Farm workers are often exposed to pesticides, which are products belonging to a specific chemical group that affects the health of agricultural workers and is mostly recognized as genotoxic and carcinogenic. The exposure of workers from Piauí, Brazil, to these hazardous chemicals was assessed and cytogenetic alterations were evaluated using the buccal micronucleus assay, hematological and lipid parameters, butyrylcholinesterase (BChE) activity and genetic polymorphisms of enzymes involved in the metabolism of pesticides, such as PON1, as well as of the DNA repair system (OGG1, XRCC1 and XRCC4). Two groups of farm workers exposed to different types of pesticides were evaluated and compared to matched non-exposed control groups. A significant increase was observed in the frequencies of micronuclei, kariorrhexis, karyolysis and binucleated cells in the exposed groups (n = 100) compared to controls (n = 100). No differences were detected regarding the hematological parameters, lipid profile and BChE activity. No significant difference was observed either regarding DNA damage or nuclear fragmentation when specific metabolizing and DNA repair genotypes were investigated in the exposed groups.

human monitoring; buccal micronucleus test; pesticides; PON 1; DNA repair genes


Introduction

The extent and complexity of health hazards inherent to workers who live with injuries caused by some types of work activities have highlighted the need to develop a model study of the future of occupational health (Higashi, 2006Higashi T (2006) Study on a model for future occupational health. Ind Health 44:541–555.). In this scenario, agriculture is one of the main activities deserving special attention with regard to workers’ health, since most farmers handle or manipulate highly hazardous compounds such as pesticides.

Pesticides are chemicals used in agriculture to control weeds and pests and to fight plant diseases. Most pesticides are a mixture of several chemical components, characterizing them as a complex mixture (Bolognesi, 2003Bolognesi C (2003) Genotoxicity of pesticides: A review of human biomonitoring studies. Mutat Res 543:251–272.).

Pesticides are associated with the increase of various types of cancer at specific sites, such as lip, skin, prostate and brain tumors, non-Hodgkin lymphoma, Hodgkin’s disease (Blair and Zahm, 1991Blair A and Zahm SH (1991) Cancer among farmers. J Occup Med 6:335–354.; Georgellis et al., 1999Georgellis A, Kolmodin-Hedman B and Kourestas D (1999) Can traditional epidemiology detect cancer risk caused by occupation exposure to pesticides? J Exp Clin Cancer 18:159–166.), leukemia (Purdue et al., 2007Purdue MP, Hoppin JA, Blair A, Dosemeci M and Alavanja MC (2007) Occupational exposure to organochlorine insecticides and cancer incidence in the agricultural health study. Int J Cancer 120:642–649.), multiple myeloma (Khuder and Mutgi, 1997Khuder SA and Mutgi AB (1997) Meta-analyses of multiple myeloma and farming. Am J Ind Med 32:510–551.), cancers of the immune, nervous, reproductive and hematological systems (Beck, 1991Beck WS (1991) Hematology. 5th edition. Cambridge University Press, Cambridge, 667 pp.; Mourad, 2005Mourad TA (2005) Adverse impact of insecticides on the health of Palestinian farm workers in the Gaza Strip: A hematologic biomarker study. Int J Occup Environ Health 11:144–149.) and lipid discords (Remor et al., 2009Remor AP, Totti CC, Moreira DA, Dutra GP, Heuser VD and Boeira JM (2009) Occupation exposure of workers to pesticides: Biochemical parameters and evaluation of genotoxicity. Environ Int 35:273–278.; Sharma et al., 2010Sharma P, Shankar S and Singh R (2010) Variation in serum lipids & liver function markers in lindane exposed female wister rats: Alternating effect of curcumin, vitamin C & vitamin E. Asian J Exp Biol Sci 1:440–444.). Many studies have pointed to the action of these chemicals as inducers of chromosomal aberrations (CA) (Au et al., 1999Au WW, Sierra-Torres CH, Cajas-Salazar N, Shipp BK and Legator MS (1999) Cytogenetic effects from exposure to mixed pesticides and the influence from genetic susceptibility. Environ Health Perspect 107:501–515.; Zeljezic and Garaj-Vrhovac, 2001Zeljezic D and Garaj-Vrhovac V (2001) Chromosomal aberration and single-cell electrophoresis (comet) assay in the longitudinal risk assessment of occupational exposure to pesticides. Mutagenesis 16:359–363.), sister chromatid exchange (SCE) (Shaham et al., 2001Shaham J, Kaufman Z, Gurvich R and Levi Z (2001) Frequency of sister-chromatid exchange among greenhouse farmers exposed to pesticides. Mutat Res 491:71–80.) and the formation of micronuclei (MN) (da Silva et al., 2008da Silva J, Moraes CR, Heuser VD, Andrade VM, Silva FR, Kvitro K, Emmel V, Rohr P, Bordin DL, Andreazza AC et al. (2008) Evaluation of genetic damage in a Brazilian population occupationally exposed to pesticides and its correlation with polymorphisms in metabolizing genes. Mutagenesis 35:415–422.).

Among the techniques used in human biomonitoring toxicogenetics, the micronucleus assay is universally considered a validated methodology for assessing the genetic instability induced by genotoxic agents (Zalacain et al., 2005Zalacain M, Sierrasesumagal L and Patino A (2005) The cytogenetic assay as a measure of genetic instability induced by genotic agents. An Sist San de Navarra 28:227–236.). Micronuclei are corpuscles present in the cytoplasm that resemble the core in its structure and color. They are the result of loss of chromosomal fragments or whole chromosomes due to clastogenic and/or aneugenic events, respectively (Maluf and Erdtmann, 2000Maluf SW and Erdtmann B (2000) Follow up study of the genetic damage in lymphocites of pharmacists and nurses handling antineoplastic drugs evaluated by cytokinesis block micronucleus; analysis and single cell gel electrophoresis assay. Mutat Res 471:21–27.).

Individual susceptibility plays a critical role in the response to pesticide exposure, determining the onset or absence of clinical symptoms, as well as acute poisoning. This sensitivity is directly associated with polymorphisms of key metabolism enzymes such as paraoxonase 1 (PON 1) (Hernández-Jerez, 2006Hernández-Jerez A (2006) Polimorfismos de paraoxonasa (PON 1). Un ejemplo de biomarcadores de susceptibilid a plaquicidas. Acta Toxicol Argent 14:29–30.). Organophosphates are activated by cytochrome P450 and hydrolyzed by PON 1, present in the liver (Costa et al., 2003Costa LG, Cole TB and Furlong CE (2003) Polymorphisms of paraoxonase (PON1) and their significance in clinical toxicology of organophosphates. J Toxicol Clin 41:37–45.). Two polymorphisms in PON1 are common, affecting the efficiency of the protein and its catalytic function for different substrates. A consequence of these polymorphisms is the differential response regarding the incidence of DNA damage in individuals exposed to organophosphates (Morahan et al., 2007Morahan JM, Yu B, Trent RJ and Pamphlett R (2007) A gene-environment study of paraoxonose 1 gene pesticides in amyotropic lateral sclerosis. Neurotoxicology 28:532–540.). Additionally, polymorphisms that reduce the DNA repair capacity can be associated with enhanced mutagenic effects and should be investigated in order to understand the differences in susceptibility to pesticide exposure (Winkinsonz and Clapper, 1997Winkinsonz J and Clapper ML (1997) Detoxication enzymes and chemoprevention. Proc Soc Exp Biol Med 216:192–200.).

The aim of this study was to assess the effects of human exposure to complex mixtures of pesticides. To evaluate the mutagenic effects of occupational exposure we used the buccal micronucleus assay in exfoliated cells of oral mucosa, besides investigating the polymorphisms of the PON 1 and DNA repair OGG1 (8-Oxoguanine glycosylase), XRCC1 (X Ray Repair Cross-Complementing 1) and XRCC4 (X Ray Repair Cross-Complementing 4) genes, biochemical parameters such as butyrylcholinesterase (BchE) enzyme, and hematological and lipid parameter activities.

Materials and Methods

Study population

This study was conducted in a setting of agricultural enterprises in the municipalities of Teresina, Nazária and José de Freitas, in the state of Piaui, Brazil. It was approved by the Research Ethics Committee of the Universidade Luterana do Brasil - ULBRA), and individual written informed consent was obtained from all participants. All subjects included completed a detailed questionnaire (a Portuguese version of the International Commission for Protection against Environment Mutagens and Carcinogens) (Carrano and Natarajan, 1988Carrano AV and Natarajan AT (1988) Considerations for population monitoring using cytogenetic techniques. International Commission for Protection against Environmental Mutagens and Carcinogens (ICPEMC publication 14). Mutat Res 204:379–406.).

The sample used in this study comprised 100 male workers (out of a total of 150 registered workers found in the selected municipalities) exposed to pesticides, who were divided into two groups: group l: 80 individuals registered with the State Occupational Health Reference Center (Association), working with maize, bean and watermelon crops; group 2: 20 workers of a private company that grows lemons and mangoes. The control group was matched for age, sex, ethnic group, smoking and drinking habits. Individuals with a history of exposure to clastogens and aneugens were excluded, according to the protocol of Minozzo et al. (2004)Minozzo R, Deimling LI, Gigante LP and Santos-Melo R (2004) Micronuclei in peripheral blood lymphocytes of workers exposed to lead. Mutat Res 565:53–60.. A 10 mL blood sample was collected from each individual by venipuncture, using vacutainers with heparine and EDTA. Each blood sample was divided into two 5 mL aliquots, one to be used for DNA extraction and the other for analyzing biochemical, hematological and lipid parameter activities. The buccal samples for the micronucleus assay were obtained by rubbing the inside of the cheeks with a cytobrush. The samples were kept at 4 °C until processing.

Buccal micronucleus assay

An MN test in exfoliated epithelial cells of oral mucosa was performed according to the method described by Salaija et al. (2006)Salaija N, Chandrasekhar M, Rekhadevi PV, Mahboob M, Rahman MF, Vuyyuri SB, Danadevi K, Hussain SA and Grover P (2006) Genotoxic evaluation of workers employed in pesticide production. Mutat Res 609:74–80.. The buccal cells were collected from the inner cheeks of the subjects with a cytobrush, washed with 5 mL of cold 1% phosphate-buffered saline solution (PBS) (pH 7.4), centrifuged at 1,500 rpm for 8 min, and fixed with a 3:1 methanol-acetic acid solution. The cell suspension was dropped onto a slide and air-dried at room temperature. The slides were then stained with 2% Giemsa solution for 10 min, rinsed in distilled water, and air-dried. The nuclear abnormalities were evaluated as described by Holland et al. (2008)Holland N, Bolognesi C, Kirsch-Volders M, Bonassi S, Zeiger E, Knasmueller S and Fenech M (2008) The micronucleus assay in human buccal cells as a tool for biomonitoring DNA damage: The HUMN project perspective on current status and knowledge gaps. Mutat Res 659:93–108.. Biomarkers of DNA damage (micronuclei), cytokinetic defects (binucleated cells) and cell death (karyorrhectic and karyolytic cells) were scored in a total of 3,000 buccal cells of each subject. The analysis was performed by light microscopy with a magnification of 1000×.

DNA extraction and genotyping

Genomic DNA was isolated from whole blood according to the method described by Lahiri and Nurnberger Jr (1991)Lahiri DK NurnbergerJr Jr (1991) A rapid non-enzymatic method for the preparation of HMW DNA from blood for RFLP studies. Nucleic Acids Res 19:5444., and stored at −20 °C. Four polymorphic markers were investigated by genotyping, using the PCR-RFLP (polymerase chain reaction - restriction fragment length polymorphism) method.

PON1Gln192Arg polymorphism

The PON1Gln192Arg polymorphism (location: 7q21.3) was genotyped by PCR/RFLP, as described by Humbert et al. (1993)Humbert R, Adler DA, Disteche CM, Hasset C, Omiecinski CJ and Furlong CE (1993) The molecular basis of the human serum paraoxonase activity polymorphism. Nat Genet 3:73–76.. An aliquot of the PCR product was digested with AlwI, and the genotypes were resolved on a 3% agarose gel stained with ethidium bromide.

OGG1Ser326Cys polymorphism

The OGG Ser326Cys polymorphism (location: 3p26.2) was genotyped using the primers and PCR conditions described by De Ruyck et al. (2005)De Ruyck K, Van Eijkeren M, Claes K, Morthier R, De Paepe A, Vral A, De Ridder L and Thierens H (2005) Radiation-induced damage to normal tissues after radiotherapy in patients treated for gynecologic tumors: Association with single nucleotide polymorphisms in XRCC1, XRCC3, and OGG1 genes and in vitro chromosomal radiosensitivity in lymphocytes. Int J Radiat Oncol Biol Phys 62:1140–9.. An aliquot of the PCR product was digested with Alw I, and the genotypes were resolved using on a 3% agarose gel stained with ethidium bromide.

XRCC1Arg194Trp polymorphism

The XRCC1Arg194Trp polymorphism (location: 19q13.2) was genotyped by PCR/RFLP according to Lunn et al. (1999)Lunn RM, Langlois RG, Hsieh LL, Thompson CL and Bell DA (1999) XRCC1 polymorphisms: Effects on Aflotoxin B1-DNA adducts and Glycophorin A variant frequency. Cancer Res 59:2557–2561.. The XRCC1194Arg and XRCC1 194Trp alleles were detected after digestion with enzyme PvuII, and the genotypes were resolved on a 3% agarose gel stained with ethidium bromide.

XRCC4Ile 401Thr polymorphism

The XRCC4*Ile 401Thr polymorphism was genotyped using the primers and PCR conditions described by Relton et al. (2004)Relton CL, Daniel CP, Hammal DM, Parker L, Janet ET and Burn J (2004) DNA repair gene polymorphisms, pre-natal factors and the frequency of somatic mutations in the glycophorin-A gene among healthy newborns. Mutat Res 545:49–57.. An aliquot of the PCR product was digested with BstNI, and the genotypes were resolved on a 3% agarose gel stained with ethidium bromide.

Determination of plasmatic BchE activity

The level of BchE activity was measured using the Dietz methodology with a Hitachi/Roche P800 automatic equipment to read absorbance in a spectrometer at 410 nm, in accordance with the protocol of Chaves (Chaves TVS, 2007, Master Thesis, Universidade Federal do Ceará. Master Thesis).

Hematological and lipid parameters

The hematological study was performed using an automatic analyzer (Sysmed KX21) to measure the following hematological parameters: leucocytes (granulocytes, lymphocytes and monocytes), erythrocytes, hematocrit, hemoglobin and platelets. The lipid parameters analyzed were LDL (low density lipoprotein) and HDL (high density lipoprotein) cholesterol, and triglycerides, using Labtest® methods.

Statistical analysis

The normality of the variables was evaluated by the Kolmogorov-Smirnov test, and Student’s t test was used to compare the characteristics of the study population. Since the values of MN, karyorrhexis and karyolysis were not normally distributed, even after transformation, the non-parametric Kruskal-Wallis test was used to compare them. The gene frequencies were estimated by gene counting, and the Hardy-Weinberg equilibrium was evaluated using the chi-square test, adjusted for small samples. Differences between the genotypes in the exposed groups were tested by the non-parametric Mann-Whitney U-test. All analyses were made using the SPSS 17.0 / PC statistical software.

Results and Discussion

Previous studies have been conducted to investigate the genotoxicity of pesticides in human biomonitoring assessment (Bolognesi, 2003Bolognesi C (2003) Genotoxicity of pesticides: A review of human biomonitoring studies. Mutat Res 543:251–272.; Rohr et al., 2011Rohr P, da Silva J, Erdtmann B, Saffi J, Guecheva TN, Henriques JAP and Kvitko K (2011) BER gene polymorphisms (OGG1 Ser326Cys and XRCC1 Arg194Trp) and modulation of DNA damage due to pesticides exposure. Environ Mol Mutagen 52:20–27.). However, there is little information in the scientific literature regarding the assessment of mutagenic occupational exposure using the buccal micronucleus assay associated with PON 1 polymorphisms and DNA repair genes.

The characteristics of the study population of workers exposed to pesticides and the controls are summarized in Table 1. There were no statistically significant differences between groups 1 and 2 regarding age, smoking and drinking habits. However, the time of exposure was significantly longer in group 1 (Association), whereas group 2 (Private) showed significant differences only in the use of full personal protective equipment (PPE).

Table 1
Characteristics of the study population.

The two groups of workers included in this study were exposed to different types of pesticides. Those belonging to group 1 dealt basically with two organophosphates, considered extremely toxic, according to the World Health Organization (2005) (Table 2). The workers of group 2 were exposed to a greater number of pesticides, including two organophosphates, two triazines, a biological insecticide, and organic copper (Table 2). Of these compounds, only one - dimethoate - is classified as severely toxic (World Health Organization (WHO), 2009World Health Organization (WHO) (2009) The WHO Recommended Classification of Pesticides and Guidelines to Classification. WHO, Geneva, 78 pp.). Also concerning Table 2, only triazine is not listed as being carcinogenic in humans (International Agency for Research on Cancer (IARC), 2007International Agency for Research on Cancer (IARC) (2007) Monographs on the Evaluation of Carcinogenic Risk to Humans. World Health Organization, Lyon, http://monographs.iarc.fr/ENG/Classification/index.php.
http://monographs.iarc.fr/ENG/Classifica...
).

Table 2
List of pesticides used by the employees of the association (Group1) and of the private company (Group 2).

Regarding the hematological markers (erythrocytes, leukocytes and platelets), both study groups presented normal values, according to Karazawa and Jamra (1989)Karazawa EH and Jamra M (1989) Normal hematological parameters. Rev Saúde Publ 23:58–66 [in Portuguese with Abstract in English]. and Remor et al. (2009)Remor AP, Totti CC, Moreira DA, Dutra GP, Heuser VD and Boeira JM (2009) Occupation exposure of workers to pesticides: Biochemical parameters and evaluation of genotoxicity. Environ Int 35:273–278., and no significant differences were observed between both exposed groups and the controls (Table 3).

Table 3
Hematological parameters in the study groups (mean ± SD).

Table 4 shows the lipid profiles of farm workers and controls. No significant difference was found between the two groups, and both presented normal lipid profiles, according to reference values of the Brazilian Consensus on Dyslipidemia. Additionally, no significant difference was found either in BChE activity values between non-exposed (9.530 ± 1.713 UL−1) and exposed subjects (8.203 ± 2.865 UL−1), which were within the normal range. Similar results were reported by Shadnia et al. (2005)Shadnia S, Azizi E, Hosseini R, Khoei S, Fouladdel S, Pajoumand A, Jalali N, and Abdollahi M (2005) Evaluation of oxidative stress and genotoxicity in organophosphorus insecticide formulators. Hum Exp Toxicol 24:439–445. and Benedetti et al. (2013)Benedetti D, Nunes E, Sarmento M, Porto C, Santos CE, Dias JF and da Silva J (2013) Genetic damage in soybean workers exposed to pesticides: Evaluation with the comet and buccal micronucleus cytome assays. Mutat Res 752:28–33., who did not find any association between chronic exposure to organophosphates and cholinesterase inhibition.

Table 4
Lipid profile of study groups (mean ± SD).

To assess the occupational risk of DNA damage, the buccal micronucleus test was performed in oral mucosa, using the following markers: MNi (chromosomal mutations), karyorrhexis (nuclear fragmentation), karyolysis (nuclear breakup) and presence of binucleated cells (defective cytokinesis). Group 1 (Association) and Group 2 (Private) were also compared with their respective negative controls (Figure 1 and 2), and the frequencies of MNi, karyorrhexis, karyolysis and binucleated cells were found to be significantly increased in groups 1 and 2. However, no significant differences were observed in the frequencies of cytogenetic parameters when group 1 was compared with group 2. In contrast to the frequencies of MNi and binucleated cells, there was an increase, although not significant, in the frequencies of karyorrhexis and karyolysis in group 1 compared to group 2 (Figure 2).

Figure 1
Comparison of the MNi frequencies between groups of workers exposed to pesticides and the control group (in 1,000 cells). ***p < 0.001 (Kruskal-Wallis test).
Figure 2
Comparison between nuclear abnormality frequencies in groups of workers exposed to pesticides and the control group (in 1,000 cells). **p < 0.01; ***p < 0.001 (Kruskal-Wallis test).

Some researchers have argued that workers exposed to pesticides can present genetic damage, which can be minimized if proper personal protective equipment is used (Bull et al., 2006Bull S, Fletcher K, Boobis AR and Battershill JM (2006) Evidence for genotoxicity of pesticides in pesticide appliers: A review. Mutagenesis 21:93–103.). Another factor that complicates comparisons between exposed groups is related to the different pesticides employed (da Silva et al., 2008da Silva J, Moraes CR, Heuser VD, Andrade VM, Silva FR, Kvitro K, Emmel V, Rohr P, Bordin DL, Andreazza AC et al. (2008) Evaluation of genetic damage in a Brazilian population occupationally exposed to pesticides and its correlation with polymorphisms in metabolizing genes. Mutagenesis 35:415–422.). In fact, the two groups of workers included in this study were exposed to different pesticides, and there were also significant differences in the use of PPE. Group 1 handled two organophosphates, which are applied from top to bottom, leading to a lower risk of spreading, but only 32.5% used PPE. The subjects of Group 2, exposed to two triazines and two organophosphates, used PPE (100%) and applied pesticides with the pump turned on. All these observations may explain the absence of significant differences in the induction of MN between the two groups.

Both groups 1 and 2 exhibited higher frequencies of cytogenetic alterations compared to their (non-exposed) controls. It is well documented in the scientific literature that organophosphates can induce oxidative damage as well as reduce the levels of cellular antioxidants and antioxidant enzyme activity (Norppa, 2004Norppa H (2004) Cytogenetic biomarkers and genetic polymorphisms. Toxicol Lett 149:309–334.). Therefore, considering that subjects of groups 1 and 2 may carry an enhanced body burden of reactive genotoxic agents, such as that induced by organophosphates, increased frequencies of cytogenetic alterations should be expected. Even in group 2, in which 100% of workers used full PPE, an increased frequency of events related to DNA damage and cell death was observed. In fact, studies have demonstrated that the use of pesticides such as dithiocarbamates, atrazine and malathion for extended periods of time can cause chromosomal breaks, acentric fragments, dicentrics, sister chromatid exchange and micronucleus frequency (Battershill, 2005Battershill JM (2005) The multiple chemicals and actions model of carcinogenesis. A possible new approach to developing prevention strategies for environmental carcinogenesis. Hum Exp Toxicol 24:547–558.).

The presence of binucleated cells is indicative of events of aneuploidy and could lead to failure in cytokinesis after the last nuclear division (Bonassi et al., 2011Bonassi S, Coskun E, Ceppi M, Lando C, Bolognesi C, Burgaz S, Holland N, KIrsh-Volders M, Knasmueller S, Zeiger E et al. (2011) The Human Micronucleus project on eXfoLiated buccal cells (HUMN(XL)): The role of life-style, host factors, occupational exposures, health status, and assay protocol. Mutat Res 728:88–97.). Karyorrhexis and karyolysis in turn are related to cell death (Thomas et al., 2008Thomas P, Harvey S, Gruner T and Fenech M (2008) The buccal cytome and micronucleus frequency is substantially altered in Down’s syndrome and normal ageing compared to young healthy controls. Mutat Res 638:37–47.), the first being characterized by the appearance of chromatin aggregation (on the condensation of chromatin), due to fragmentation and nuclear disintegration. Yet, cells in karyolysis show only the shadow of the nucleus (the nucleus “ghost”) and are at a late stage of the cell death process.

In order to investigate whether individual genetic variations in xenobiotic metabolizing and DNA damage repair could influence the individual susceptibility to different DNA damage effects of pesticides, the exposed subjects were genotyped for PON1, OGG1, XRCC1 and XRCC4 genes. PON1 is the serum enzyme responsible for the metabolism of organophosphates, and genotoxic metabolites could be increased due to unfavorable genotypes of the exposed individuals (Au et al., 1999Au WW, Sierra-Torres CH, Cajas-Salazar N, Shipp BK and Legator MS (1999) Cytogenetic effects from exposure to mixed pesticides and the influence from genetic susceptibility. Environ Health Perspect 107:501–515.). While OGG1 and XRCC1 proteins act in the base excision repair (BER) pathway for the correction of oxidized bases and DNA adducts (Goode et al., 2002Goode REL, Ulrich CM and Potter JD (2002) Polymorphisms in DNA repair genes and associations with cancer risk. Cancer Epidemiol Biomarkers Prev 11:1513–1530.; Marsin et al., 2003Marsin S, Vidal AE, Sossou M, Menissier JM, Le Page F, Boiteux S, de Murcia G and Radicella JP (2003) Role of XRCC1 in the coordination and stimulation of oxidative DNA damage repair initiated by the DNA glycosylase hOGG1. J Biol Chem 278:44068–44074.), XRCC4 acts at the non-homologous end, joining (NHEJ) the repair pathway for the correction of DNA double strand breaks (DSBs).

Genotype distribution and variant allele frequencies in the subjects studied are presented in Table 5. No deviations from the Hardy-Weinberg equilibrium were observed. Table 6 shows the individual effect of genetic polymorphisms in xenobiotic metabolizing and DNA repair enzyme genes on different results of micronucleus, karyorrhexis and karyolysis findings in exfoliated epithelial cells of oral mucosa. No significant difference was observed for the parameters of DNA damage or nuclear fragmentation in relation to the genes investigated. Previous studies have provided evidence that significant DNA damage induced by pesticide exposure was not associated with metabolizing or DNA repair enzyme genes (Sözmen et al., 2007Sözmen B, Peker S, Kaya Ü, Erkan M and Sözmen EY (2007) Markers of long-term exposure to organophoshorus pesticides in farmers who work in viniculture and tobacco production in Turkey. Toxicol Mech Methods 17:379–384.; Silva et al., 2012Silva FR, da Silva J, Nunes E, Benedetti D, Kahl V, Rohr P, Abreu MB, Thiessen FV and Kvitko K (2012). Application of the buccal micronucleus cytome assay and analysis of PON1Gln192Arg and CYP2A6*9(−48T > G) polymorphisms in tobacco farmers. Environ Mol Mutagen 53:525–534.). However, other studies have demonstrated that polymorphism in the PON1 and BER pathways could modulate the susceptibility to DNA damage caused by pesticide exposure in the cytokinesis-blocked micronucleus (CBMN) assay in human lymphocytes (da Silva et al., 2008da Silva J, Moraes CR, Heuser VD, Andrade VM, Silva FR, Kvitro K, Emmel V, Rohr P, Bordin DL, Andreazza AC et al. (2008) Evaluation of genetic damage in a Brazilian population occupationally exposed to pesticides and its correlation with polymorphisms in metabolizing genes. Mutagenesis 35:415–422., Rohr et al., 2011Rohr P, da Silva J, Erdtmann B, Saffi J, Guecheva TN, Henriques JAP and Kvitko K (2011) BER gene polymorphisms (OGG1 Ser326Cys and XRCC1 Arg194Trp) and modulation of DNA damage due to pesticides exposure. Environ Mol Mutagen 52:20–27.). Further efforts should be made to characterize the combined effects of metabolizing and DNA repair variants on the response of individuals to pesticide exposure.

Table 5
Distribution of genotypes and variant allele frequencies in the exposed groups.
Table 6
Effects of individual genotypes for metabolism (PON1 Gln192Arg) and DNA repair genes (OGG1 Ser326Cys, XRCC1 Arg194Trp, XRCC4 Ile 401Thr) polymorphism on the frequencies of the biomarkers evaluated (micronuclei, karyorrhexis and karyolysis) in the exposed groups (mean ± S.D).

In this study, we determined the mutagenic and cell death potential of pesticides through the increased frequency of MNi and other nuclear abnormalities in exposed individuals. The individual metabolism and DNA repair genotypes of the exposed subjects did not show any effect on the investigated biomarkers.

These results also indicate that the buccal mucosa micronucleus test is useful for assessing genotoxic effects of pesticides. Hence, the association with genetic polymorphisms of enzymes involved in xenobiotic metabolism and DNA repair in populations exposed to genotoxic agents such as pesticides are part of the evaluation of individual gene modulation of the cytological response to chemical exposure. This integration is relevant to prevent the harmful effects of pesticides on workers.

Acknowledgments

This work was supported by grants from the Instituto Federal de Educação, Ciência e Tecnologia do Piauí (IFPI) and Fundação de Amparo à Pesquisa do Estado do Piauí (FAPEPI).

  • Associate Editor: Carlos F.M. Menck

References

  • Au WW, Sierra-Torres CH, Cajas-Salazar N, Shipp BK and Legator MS (1999) Cytogenetic effects from exposure to mixed pesticides and the influence from genetic susceptibility. Environ Health Perspect 107:501–515.
  • Battershill JM (2005) The multiple chemicals and actions model of carcinogenesis. A possible new approach to developing prevention strategies for environmental carcinogenesis. Hum Exp Toxicol 24:547–558.
  • Beck WS (1991) Hematology. 5th edition. Cambridge University Press, Cambridge, 667 pp.
  • Benedetti D, Nunes E, Sarmento M, Porto C, Santos CE, Dias JF and da Silva J (2013) Genetic damage in soybean workers exposed to pesticides: Evaluation with the comet and buccal micronucleus cytome assays. Mutat Res 752:28–33.
  • Blair A and Zahm SH (1991) Cancer among farmers. J Occup Med 6:335–354.
  • Bolognesi C (2003) Genotoxicity of pesticides: A review of human biomonitoring studies. Mutat Res 543:251–272.
  • Bonassi S, Coskun E, Ceppi M, Lando C, Bolognesi C, Burgaz S, Holland N, KIrsh-Volders M, Knasmueller S, Zeiger E et al. (2011) The Human Micronucleus project on eXfoLiated buccal cells (HUMN(XL)): The role of life-style, host factors, occupational exposures, health status, and assay protocol. Mutat Res 728:88–97.
  • Bull S, Fletcher K, Boobis AR and Battershill JM (2006) Evidence for genotoxicity of pesticides in pesticide appliers: A review. Mutagenesis 21:93–103.
  • Carrano AV and Natarajan AT (1988) Considerations for population monitoring using cytogenetic techniques. International Commission for Protection against Environmental Mutagens and Carcinogens (ICPEMC publication 14). Mutat Res 204:379–406.
  • Costa LG, Cole TB and Furlong CE (2003) Polymorphisms of paraoxonase (PON1) and their significance in clinical toxicology of organophosphates. J Toxicol Clin 41:37–45.
  • da Silva J, Moraes CR, Heuser VD, Andrade VM, Silva FR, Kvitro K, Emmel V, Rohr P, Bordin DL, Andreazza AC et al. (2008) Evaluation of genetic damage in a Brazilian population occupationally exposed to pesticides and its correlation with polymorphisms in metabolizing genes. Mutagenesis 35:415–422.
  • De Ruyck K, Van Eijkeren M, Claes K, Morthier R, De Paepe A, Vral A, De Ridder L and Thierens H (2005) Radiation-induced damage to normal tissues after radiotherapy in patients treated for gynecologic tumors: Association with single nucleotide polymorphisms in XRCC1, XRCC3, and OGG1 genes and in vitro chromosomal radiosensitivity in lymphocytes. Int J Radiat Oncol Biol Phys 62:1140–9.
  • Georgellis A, Kolmodin-Hedman B and Kourestas D (1999) Can traditional epidemiology detect cancer risk caused by occupation exposure to pesticides? J Exp Clin Cancer 18:159–166.
  • Goode REL, Ulrich CM and Potter JD (2002) Polymorphisms in DNA repair genes and associations with cancer risk. Cancer Epidemiol Biomarkers Prev 11:1513–1530.
  • Hernández-Jerez A (2006) Polimorfismos de paraoxonasa (PON 1). Un ejemplo de biomarcadores de susceptibilid a plaquicidas. Acta Toxicol Argent 14:29–30.
  • Higashi T (2006) Study on a model for future occupational health. Ind Health 44:541–555.
  • Holland N, Bolognesi C, Kirsch-Volders M, Bonassi S, Zeiger E, Knasmueller S and Fenech M (2008) The micronucleus assay in human buccal cells as a tool for biomonitoring DNA damage: The HUMN project perspective on current status and knowledge gaps. Mutat Res 659:93–108.
  • Humbert R, Adler DA, Disteche CM, Hasset C, Omiecinski CJ and Furlong CE (1993) The molecular basis of the human serum paraoxonase activity polymorphism. Nat Genet 3:73–76.
  • Karazawa EH and Jamra M (1989) Normal hematological parameters. Rev Saúde Publ 23:58–66 [in Portuguese with Abstract in English].
  • Khuder SA and Mutgi AB (1997) Meta-analyses of multiple myeloma and farming. Am J Ind Med 32:510–551.
  • Lahiri DK NurnbergerJr Jr (1991) A rapid non-enzymatic method for the preparation of HMW DNA from blood for RFLP studies. Nucleic Acids Res 19:5444.
  • Lunn RM, Langlois RG, Hsieh LL, Thompson CL and Bell DA (1999) XRCC1 polymorphisms: Effects on Aflotoxin B1-DNA adducts and Glycophorin A variant frequency. Cancer Res 59:2557–2561.
  • Maluf SW and Erdtmann B (2000) Follow up study of the genetic damage in lymphocites of pharmacists and nurses handling antineoplastic drugs evaluated by cytokinesis block micronucleus; analysis and single cell gel electrophoresis assay. Mutat Res 471:21–27.
  • Marsin S, Vidal AE, Sossou M, Menissier JM, Le Page F, Boiteux S, de Murcia G and Radicella JP (2003) Role of XRCC1 in the coordination and stimulation of oxidative DNA damage repair initiated by the DNA glycosylase hOGG1. J Biol Chem 278:44068–44074.
  • Minozzo R, Deimling LI, Gigante LP and Santos-Melo R (2004) Micronuclei in peripheral blood lymphocytes of workers exposed to lead. Mutat Res 565:53–60.
  • Morahan JM, Yu B, Trent RJ and Pamphlett R (2007) A gene-environment study of paraoxonose 1 gene pesticides in amyotropic lateral sclerosis. Neurotoxicology 28:532–540.
  • Mourad TA (2005) Adverse impact of insecticides on the health of Palestinian farm workers in the Gaza Strip: A hematologic biomarker study. Int J Occup Environ Health 11:144–149.
  • Norppa H (2004) Cytogenetic biomarkers and genetic polymorphisms. Toxicol Lett 149:309–334.
  • Purdue MP, Hoppin JA, Blair A, Dosemeci M and Alavanja MC (2007) Occupational exposure to organochlorine insecticides and cancer incidence in the agricultural health study. Int J Cancer 120:642–649.
  • Relton CL, Daniel CP, Hammal DM, Parker L, Janet ET and Burn J (2004) DNA repair gene polymorphisms, pre-natal factors and the frequency of somatic mutations in the glycophorin-A gene among healthy newborns. Mutat Res 545:49–57.
  • Remor AP, Totti CC, Moreira DA, Dutra GP, Heuser VD and Boeira JM (2009) Occupation exposure of workers to pesticides: Biochemical parameters and evaluation of genotoxicity. Environ Int 35:273–278.
  • Rohr P, da Silva J, Erdtmann B, Saffi J, Guecheva TN, Henriques JAP and Kvitko K (2011) BER gene polymorphisms (OGG1 Ser326Cys and XRCC1 Arg194Trp) and modulation of DNA damage due to pesticides exposure. Environ Mol Mutagen 52:20–27.
  • Salaija N, Chandrasekhar M, Rekhadevi PV, Mahboob M, Rahman MF, Vuyyuri SB, Danadevi K, Hussain SA and Grover P (2006) Genotoxic evaluation of workers employed in pesticide production. Mutat Res 609:74–80.
  • Shadnia S, Azizi E, Hosseini R, Khoei S, Fouladdel S, Pajoumand A, Jalali N, and Abdollahi M (2005) Evaluation of oxidative stress and genotoxicity in organophosphorus insecticide formulators. Hum Exp Toxicol 24:439–445.
  • Shaham J, Kaufman Z, Gurvich R and Levi Z (2001) Frequency of sister-chromatid exchange among greenhouse farmers exposed to pesticides. Mutat Res 491:71–80.
  • Sharma P, Shankar S and Singh R (2010) Variation in serum lipids & liver function markers in lindane exposed female wister rats: Alternating effect of curcumin, vitamin C & vitamin E. Asian J Exp Biol Sci 1:440–444.
  • Silva FR, da Silva J, Nunes E, Benedetti D, Kahl V, Rohr P, Abreu MB, Thiessen FV and Kvitko K (2012). Application of the buccal micronucleus cytome assay and analysis of PON1Gln192Arg and CYP2A6*9(−48T > G) polymorphisms in tobacco farmers. Environ Mol Mutagen 53:525–534.
  • Sözmen B, Peker S, Kaya Ü, Erkan M and Sözmen EY (2007) Markers of long-term exposure to organophoshorus pesticides in farmers who work in viniculture and tobacco production in Turkey. Toxicol Mech Methods 17:379–384.
  • Thomas P, Harvey S, Gruner T and Fenech M (2008) The buccal cytome and micronucleus frequency is substantially altered in Down’s syndrome and normal ageing compared to young healthy controls. Mutat Res 638:37–47.
  • Winkinsonz J and Clapper ML (1997) Detoxication enzymes and chemoprevention. Proc Soc Exp Biol Med 216:192–200.
  • World Health Organization (WHO) (2009) The WHO Recommended Classification of Pesticides and Guidelines to Classification. WHO, Geneva, 78 pp.
  • Zalacain M, Sierrasesumagal L and Patino A (2005) The cytogenetic assay as a measure of genetic instability induced by genotic agents. An Sist San de Navarra 28:227–236.
  • Zeljezic D and Garaj-Vrhovac V (2001) Chromosomal aberration and single-cell electrophoresis (comet) assay in the longitudinal risk assessment of occupational exposure to pesticides. Mutagenesis 16:359–363.

Internet Resources

Publication Dates

  • Publication in this collection
    Sept 2015

History

  • Received
    18 Nov 2014
  • Accepted
    22 Mar 2015
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