Effects of Subacute and Subchronic Treatment of Synthetic Plant Growth Regulators on Liver Damage Serum Biomarkers Tissue Antioxidant Defense Systems and Lipid Peroxidation in Rats

Abbreviations: ß-NOA: ß-Naphthoxy Acetic Acid; 4-CPA: 4-Chlorophenoxy Acetic Acid; AST: Aspartate Aminotransferase; ALT: Alanin Aminotransferase; LDH: Lactate Dehydrogenase; TPRO: Total Protein; TALB: Total Albumin; TCHOL: Total Cholesterol; TBIL: Total Bilirubin; SOD: Superoxide Dismutase; GR: Glutathione Reductase; CAT: Catalase; GSH-Px: Glutathione Peroxidase; GST: GlutathioneS-transferase; G6PD: Glucose-6-Phosphate Dehydrogenase; GSH: Glutathione; MDA: Malondialdehyde


Introduction
Many chemicals are currently used in agriculture, and plant growth regulators (PGRs) are among those widely used. The amounts of these substances placed into the environment may soon exceed those of insecticides [1]. PGRs play important roles in many cellular processes including seed development, dormancy, germination, vegetative growth, and environmental stress responses [2]. PGRs play also, important roles in many cellular processes including promotes stem elongation, overcomes dormancy in seed and buds, involved in parthenocarpic fruit development, flowering, mobilization of food reserves in grass seed germination, juvenility and sex expression [3].
Free radicals, such as superoxide, hydroxyl ions and nitric oxide all contain an unpaired electron. These radicals can have a negative effect on cells causing oxidative damage that leads to cell death [6]. Antioxidant defenses, present in all aerobic organisms, include acid) might induce the neuronal apoptosis in the S phase and lead to microencephaly. de Melo et al. [12] determined that incubation for 24 h in the presence of IAA (1 mM) showed increase in the activities of superoxide dismutase (SOD), catalase (CAT) and glutathione peroxidase in rat neutrophils and lymphocytes. John et al. [13] observed that IAA possesses teratogenic effects in gestation mice and rats at 500 mg/kg/day. El-Mofty and Sakr [14] found that GA 3 induced liver neoplasm in Egyptian toads, and they suggested that the tumors could be diagnosed as hepatocellular carcinomas. GA 3 also induces microabsceses and hydropic degeneration in the liver and mononuclear inflammatory infiltration in the kidneys of laboratory mice, but not tumours. In a study, IAA effect investigated on human serum enzymes in vitro, it was found that IAA inhibited aspartate aminotransferase (AST) but activated amylase, creatine phosphokinase (CPK) and lactate dehydrogenase (LDH). Also, it was reported that while the levels of LDH and CPK increased significantly by IBA, the levels of AST, LDH and CPK were increased significantly by IAA after subacute exposure with 100 ppm dosages [15]. IAA was found to be linear-mixed type inhibitor for human serum BChE, and uncompetitive inhibitor for the horse serum BChE enzyme [10]. Further, PGRs may induce oxidative stress, leading to generation of free radicals and cause lipid peroxidation as one of the molecular mechanisms involved in PGRs-induced toxicity [16][17][18][19][20][21][22][23]. On the other hand, a previous study carried out in the tissues of rats indicated that PGRs had neurotoxic and immunotoxic effect by deranging acetylcholinesterase, butyrylcholinesterase, adenosine deaminase and myeloperoxidase enzyme activities [24].
Despite the reasons mentioned in above paragraphs, little is known regarding the hepatotoxicity and oxidative stress effects of ß-NOA and 4-CPA on vertebrate. In order to achieve a more rational design of ß-NOA and 4-CPA, it is necessary to clarify the mechanism of hepatotoxicity and oxidative stress for ß-NOA and 4-CPA. To this end, the treatments of ß-NOA and 4-CPA were done orally because the effect of chemicals represents a well characterized in vivo toxicity model system. The parameters were chosen due to their important role for hepatotoxicity, oxidative stress damages and important role during detoxification in degradation and bioactivation of ß-NOA and 4-CPA index. As it is know, liver damage serum parameters and oxidative stress biomarkers are sensitive to pollutants. Therefore, it is commonly used for ecotoxicological risk assessment and environmental pollutants monitoring studies. This study was approved by The Ethic Committee of Yüzüncü Yıl University. Further, the research was supported by the University Grant Commission of Yuzuncu Yil University.

Animals
Rats (Wistar albino) 4 months of age with an average weighing 150-200 g were provided by the animal house of the Medical School of Yüzüncü Yıl University, and were housed in 12 groups, each group containing 6 rats. The animals were housed at 20 ± 2°C and in daily light/dark cycle. All animals were fed a group wheat-soybean-mealbased diet and water ad libitum in stainless cages, and received humane care according to the criteria outlined in the 'Guide for the Care and Use of Laboratory Animals' prepared by the National Academy of Science and published by the National Institutes of Health [25]. The ethic regulations have been followed in accordance with national and institutional guidelines for the protection of animal welfare during experiments.

Treatment of rats
This investigation was performed on male rats. The animals are housed for a minimum of five days to 'acclimatize' before being dosed with the substance.
The rats were exposed to 10 and 20 ppm ß-NOA and 4-CPA ad libitum 25 days for subacute and 50 days for subchronic applications as drinking water. 10 and 20 milligrams of the ß-NOA and 4-CPA were dissolved in 1 mL of 1 N NaOH and absolute ethanol, and then were diluted with tap water until 1000 mL to obtain a 10 and 20 ppm dosages. For the control rats, only 1 mL of 1 N NaOH and ethanol were added to 1000 mL of tap water. Because the PGRs are photoactive compounds the drinking water containing ß-NOA and 4-CPA was prepared and refreshed every day in amber bottle. Since all rats have the same physiologic characters, daily water consumption of all groups of rats was approximately 30 ± 4 mL during the tests.
At the end of the treatments, the rats were anesthetized by inhalation of diethyl ether, and after blood and tissues samples were obtained, they were sacrificed. The blood samples were obtained from a cardiac puncture using syringe for the determination of serum enzyme levels and biochemical analysis. For serum enzyme levels, blood samples were put immediately into ice-chilled siliconzed disposable glass tubes. The serum samples were obtained by centrifuging blood samples at 4000 g for 15 min at 4°C, and enzyme levels were measured in these serum samples. For biochemical analysis, blood samples were put immediately into silicon disposable glass tubes with EDTA as an anticoagulant. Blood samples were centrifuged at 4000 x g for 15 min at 4°C and erythrocyte pellets were obtained. Then the pellets were washed tree times with physiological saline (0.9% NaCl). The GSH concentration in erythrocytes and tissues were measured just after the animals were sacrificed because of tremendous loss of GSH. The concentration of GSH and MDA and the activities of SOD, GR, CAT, GSH-Px, GST and G6PD in the erythrocytes were measured in the pellets.
The tissues were dissected and put in Petri dishes. After washing the tissues with 0.9% NaCl, samples were taken and kept at -78°C until the analysis. The tissues were homogenized for 5 min in 50 mM icecold KH 2 PO 4 solution (1:5 w/v) using a glass-porcelain homogenizer (20 KHz frequency ultrasonic, Jencons Scientific Co.) and then centrifuged at 7000 x g for 15 min. All processes were carried out at 4°C. Supernatants were used to determine antioxidant defense system enzymes.

Biochemical analysis
The erythrocyte and tissues MDA concentration was determined using the method described by [25], based on TBA reactivity. The erythrocyte and tissues GSH concentration was measured using the method described by Jain et al [26]. CAT and G6PD activity was determined using the method described by Beutler et al [27]. GST was assayed at 25°C spectrophotometrically by following the conjugation of glutathione with 1-chloro-2, 4-dinitrobenzene (CDNB) at 340 nm as described by Beutler E [28]. GR activity was assayed according to Mannervik and Guthenberg [29] as the decrease in absorbance of NADPH at 340 nm. GSH-Px activity was assayed according to Paglia and Valentine [30] based on that of GSH-Px catalyses the oxidation of GSH by Cumene Hydroperoxide. SOD activity was measured at 505 nm and 37°C and calculated using inhibition percentage of formazan dye formation [31].

Measurement of serum biomarkers
AST, ALT and LDH serum enzyme levels, and biochemical parameters; TPRO, TALB, TCHOL TBIL levels were measured by an auto analyzer (BM/HITACHI-911), using the kits.

Analysis of data
All data were expressed as mean ± standard deviation (SD). The statistical analyses were made using the Minitab 13 for windows packet program. Means and Standard deviations were calculated according to the standard methods for all parameters. One way ANOVA statistical test was used to determine the differences between means of the treatments and the control group accepting the significance level at p ≤ 0.05.

Results
The results of experiment showed that the treatment of rats with ß-NOA and 4-CPA caused changes in the activities and levels of serum parameters selected as biomarkers for liver damage (Table 1-2), in the concentration of MDA and GSH, and antioxidant enzymes such as CAT, G6DP, GST, GR, GSH-Px and SOD in erythrocyte, liver, brain, kidney and heart tissues in comparison to control rats ( Table  3- 12). To find out the significance of biochemical changes in different tissues exposed to ß-NOA and 4-CPA for 25 and 50 days, the data have been subjected to ANOVA (One way) test. According to the results, ß-NOA and 4-CPA caused a significant fluctuate in serum biomarkers for liver damage with both periods. Also, the lipid peroxidation end product MDA significantly increased in the erythrocyte, liver, brain, kidney and heart tissues of rats treated with both the period of ß-NOA and 4-CPA. The GSH levels and antioxidant defense system enzymes  Table 1: Effects of ß-NOA 10-20 ppm on serum biomarker levels of rats at subacute and subchronic.
Each value represents the Mean ± SD. * p<0.05

Discussion
In recent years, a significant increase in the use of PGRs against harmful agricultural pests and giving rise to losing product have been observed in Turkey and the rest of the world. One of the major reasons for the increase is the ease of using PGRs and ensuring an absolute result. In this study, ß-NOA and 4-CPA were preferred because information on its negative effects on higher animals is very limited for in vivo, oral exposures. Also, ß-NOA and 4-CPA are found in plants as exogen hormones and wide variety of biologically active compounds. The data collected in this study were all from one time-point of the experiment. We found that the treatment to ß-NOA and 4-CPA caused changes in the activities and levels of serum parameters selected as biomarkers for liver damage, the production of lipid peroxides, and affected antioxidant defense in various rat tissues.
So far, no study examining the effect of ß-NOA and 4-CPA in vivo have been made on rat erythrocyte and that of tissues MDA content and antioxidant enzymes activities. Therefore, we could not have the chance to compare our results with the previous results. In addition, because of high variability in analyzing MDA content and antioxidant enzymes-chemicals interaction in vitro and in vivo, and inconsistent factors like treatment time and manner, the setting of studies, purity of chemicals and species tissue differences etc., it is difficult to compare the present data to different studies regarding the for toxicological effect. To the extent that chemical affect, little is known about the biochemical or physiological effects in vertebrates. Ozdem et al. [5] observed that 4-CPA-raised tomato homogenate fluctuate the rat erythrocyte antioxidant enzymes such as G6PD, CAT, selenium-dependent GSH-Px and Cu/Zn-SOD.
In this study, ß-NOA and 4-CPA caused a significant alteration in the activities and levels of serum parameters selected as TPRO, TALB, Each value represents the Mean ± SD. * p<0.05   Tables 1-2),. Namely, ß-NOA and 4-CPA caused a significant fluctuate the level serum biomarker for hepatotoxicity with both periods and dosages. The reasons for such effect of alcohol and the grape seeds suplementaion are not understood at present certainly. However, it is known that several soluble enzymes in blood serum such as these enzymes have been considered as indicators of the hepatic dysfunction and damage. Also, the increase in the activities of AST and ALT in plasma of rats treated with ethyl alcohol is mainly due to the leakage of these enzymes from the liver cytosol into the blood stream [32]. Further, ALT and AST levels are also of value indicating the existence of liver diseases, as this enzyme is present in large quantities in the liver. ALT increases in serum when cellular degeneration or destruction occurs in this organ [33]. Any interference in these enzymes leads to biochemical impairment and lesions of the tissue and cellular function Yousef et al. [35] reported that the changes in the activities of these enzymes in SnCl 2 -treated rats were regarded as the biochemical manifestation of the toxic action of inorganic tin. On the other hand, phosphatases and dehydrogenases are important and critical enzymes in biological processes too. They are responsible for detoxification, metabolism and biosynthesis of energetic macromolecules for different essential functions. The increase in plasma LDH activity may be due to the hepatocellular necrosis leading to leakage of the enzyme to the blood stream [36]. Thus, when alcohol may lead to the release of these enzymes into plasma as a result of autolytic breakdown or cellular necrosis, the grape seeds supplement impart protection against alcohol induced oxidative injury that may result in development of liver damage. Similarly, another researcher had determined that have decreased AST and ALT activities in the serum of Channa striatus following exposure to xenobiotics [37]. Oruc and Uner [38] also found an increase in the serum LDH activity in Cyprinus carpio following exposure to 2,4-Diamin. Although the treatment, materials of studies and the setting of studies are different, this result is in accordance with our result partly.
Each value represents the Mean ± SD. * p<0.05  In addition to the fluctuated serum marker parameters, the results of the present study have also demonstrated that the rats treated with both doses of ß-NOA and 4-CPA could have affected the antioxidant defense systems in vertebrates. This is evidenced from our observation that, upon ß-NOA and 4-CPA treatment in vivo, the concentration of MDA and the antioxidant defense markers in erythrocyte, liver, brain, kidney and heart tissues differ from that of control rats. The present study showed that The lipid peroxidation end product MDA significantly increased in the all tissues of rats treated with both the period and dosages of ß-NOA and 4-CPA. The reasons for such affect of PGRs are not understood at the present. But, the increased content of MDA may result from an increase of hydroxyl radicals ( . OH). However, it is conceivable that ß-NOA and 4-CPA might be interacting primarily with the tissues, resulting in lipid peroxidation processes by way of increase superoxide radicals as result of stressed condition in the rats, leading to an increase in lipid peroxidation. MDA is a major oxidation product of peroxidized polyunsaturated fatty acids and increased MDA content is an important indicator of lipid peroxidation [39]. It is known that . OH can initiate lipid peroxidation in tissues [8]. Results also showed that the GSH levels were significantly fluctuated in the tissues of rats treated with both the period and dosages of ß-NOA and 4-CPA. On the other hand, it is known that the elevation of lipid peroxidation after the consumption of some xenobiotics and following superoxide overproduction which produce dismutation singlet oxygen and H 2 O 2 , can be easily converted later into the reactive . OH. Both single oxygen and OH radical have a high potential to initiate free radicals chain reactions of lipid peroxidation. Further, it is known that . OH can initiate lipid peroxidation in tissues [40] and MDA is a major oxidation product of peroxidized polyunsaturated fatty acids and increased MDA content is an important indicator of lipid peroxidation [39].
Meanwhile, SOD, GR, GSH-Px and GST activities and GSH levels were fluctuated at appreciable level in the alcohol-treated rats. But the efficacy of the grape seeds against these fluctuations could have Each value represents the Mean ± SD. * p<0.05 Table 7: Effects of ß-NOA 10-20 ppm on antioxidant defence systems and MDA contents in kidney of rats at subacute and subchronic.

Period
Parameters Control X ± SD ß-NOA 10 ppm X ± SD  not been determined. The reasons for such effect of functional plant's supplemented are not understood at the present. However, oxidative stress can affect the activities of protective enzymatic antioxidants in organisms exposed to alcohol. The increased GSH-Px and GST activities may reflect an adaptive change against ethanol-induced lipid peroxide toxicity [41]. However, the increased activities of GST are known to serve as protective responses to eliminate xenobiotics [42]. Thus, the existence of an inducible antioxidant system may reflect an adaptation of organisms. An increase in the constituent of antioxidant defense systems may result an increase of superoxide radicals. Further, the decreased activity of GST may lead to decreased protection against oxidants [43]. It is not a general rule that increases in pollutant concentrations induce antioxidant activity. Doyotte et al. [44] pointed out that a decreased response may accompany a first exposure to pollutants, which can be followed by an induction of antioxidant systems. Thus, the existence of an inducible antioxidant system may reflect an adaptation of organisms. Nevertheless, the physiological the role of a single antioxidant enzyme in the cell is poorly understood because of complex interactions and interrelationships among individual components. Findings of this study suggest that further experiments should be performed to elicit what is responsible for the elevation of MDA content in tissues, and for the decreasing or increasing level of antioxidant enzymes. In addition, the different values of antioxidants marker enzymes and MDA content in the tissues of rats exposed to PGRs may dependent on differences of interstitial. Namely, the systems might have to be exposed to different xenobiotic concentration due to blood volume differences in the tissues.
The enzymatic antioxidants such as SOD, GR, GSH-Px, GST and CAT have been shown to be sensitive indicators of increased oxidative stress in Mugil sp obtained from a polluted area containing high concentrations of polyaromatic hydrocarbons, polychlorinated biphenyls, and pesticides [45]. The increased activities of SOD, CAT, GSH-Px, GR, and GST are known to serve as protective responses Each value represents the Mean ± SD. * p<0.05 Table 9: Effects of ß-NOA 10-20 ppm on antioxidant defence systems and MDA contents in liver of rats at subacute and subchronic.

Period
Parameters Control X ± SD  to eliminate reactive free radicals [46]. However, Candeias et al. [16] investigated the peroxidation of liposomes by a haem peroxidase and hydrogen in the presence of IAA and derivates. They found that these compounds can accelerate lipid peroxidation up to 65-fold, and this is attributed to the formation of peroxyl radicals that may react with the lipids, possibly by hydrogen abstraction.

Conclusion
The observations presented here led us to conclude that while administration of subacute and subchronic ß-NOA and 4-CPA at sub lethal dosages promotes MDA concentration fluctuations in the antioxidative systems and liver damage serum biomarkers. Also, these results suggest that the serum biomarkers, tissues antioxidant markers and MDA content may be offer with means for monitoring toxicity of compounds such as ß-NOA and 4-CPA. The test results may be used in oncoming investigations if more studies confirm our findings.
Such a test will be of value in pollution studies, and also be of interest to understand molecular basis of refractoriness ß-NOA and 4-CPA toxicity.