Chinese Traditional Medicine Journal | 2021 | Vol 4 | Issue 1 ISSN : 2693 - 6356 2021 | Vol 4 | Issue 1 CTMJ | traditionalmedicinejournals.com Impact of pycnogenol on oxidative and inflammatory damage in rat ovaries caused by ischemia/reperfusion Dr.Y.Sirisha 1 , Dr.Aneela 2 ,Shivaprasad 3 ,Asraful hoque 4, Assistant professor 1,2,3,4 , Department of Pharmacy, Samskruti College of Pharmacy, Kondapur (V), Ghatkesar (M) Medchal Dist, Telangana, India. Abstract The goal of this biochemical and histological study was to determine if pycnogenol (PYC) protected rats' ovaries from the ischemia/reperfusion (I/R) damage that resulted from experimental ovarian torsion.Methods: The six rats were divided into four equal groups and given the following names: SG (sham), PCG (pycnogenol 40 mg/kg), IRG (ovarian ischemia-reperfusion), and PIR (pycnogenol 40 mg/kg plus ovarian ischemia-reperfusion). The right ovary was made to undergo ischemia for two hours using vascular clips in the groups that received IRG and PYC treatments. Two hours after induction of ischemia, the ovary was reperfused. Next, the levels of MDA, tGSH, NF-κB, TNF-α, and IL-1β in the rat ovarian tissues were reviewed. Follicle counts were also conducted in addition to histological examinations of ovarian tissues.The outcomes are: The developing follicles in the ovary of the I/R- induced group exhibited morphological and cellular deterioration as well as vascular disease, according to the histopathological investigation. Compared to the I/R-induced group, the PYC therapy group exhibited significantly reduced ovarian injury, edema, and vascular pathology (p < 0.05). Compared to the SG group, the I/R-induced group had considerably greater levels of MDA, NF-κB, TNF-α, and IL-1β, whereas the I/R damage group had significantly lower levels of tGSH (p < 0.05). Treatment with pycnogenol corrected the alterations in these biochemical indicators and the histological changes caused by I/R.Pycnogenol protects rat ovaries against I/R- induced alterations in biochemical markers and histological disturbances, as shown in the conclusion. If we want to know how PYC affects ovarian damage, we need further research, preferably on people. Key terms: ischemia-reperfusion, ovarian injury, pycnogenol, malondialdehyde, tumor necrosis factor-alpha, interleukin-1β. INTRODUCTION Ovarian torsion occurs when the ovary rotates around its ligaments from which it receives support [1]. It is a gynecological emergency and affect women of all ages [2]. The most important risk factors are: being of reproductive age, presence of a mass in the ovaries exceeding 5 cm, pregnancy, ovulation induction and previous ovarian torsion [3]. However, ovarian torsion is seen even in normal ovaries [4]. Ovarian torsion is one of the causes of ovarian ischemia [2]. Ischemia is a condition in which the amount of oxygen in the tissue is reduced as a result of impaired blood flow in the vessels associated with the tissue, for whatever reason. On the other hand, reperfusion is the restoration of blood supply to the ischemic tissues [5]. Continuous reperfusion, after an ischemic attack, leads to a new physio-pathological process called “reperfusion injury”, which results in more severe tissue damage [6]. A delay in diagnosing and treating ovarian torsion result in severe ovarian damage and infertility [7]. Therefore, in the clinical setting, reperfusion of the ovaries by detorsion of the torsioned ovaries and preservation of their functions should be prioritized. Xanthine oxidase, the levels of which increase in tissue during ischemia, converts hypoxanthine to xanthine, using the abundant oxygen available as the tissue reperfuses [5]. As a result, a large proportion of the oxygen that reaches the tissue during reperfusion is converted into reactive oxygen species (ROS). Products with toxic properties, such as malondialdehyde (MDA), are formed due to the attack of cell membrane lipids by ROS [5]. In a study conducted by Ali and coworkers, it was reported that Chinese Traditional Medicine Journal | 2021 | Vol 4 | Issue 1 ISSN : 2693 - 6356 2021 | Vol 4 | Issue 1 CTMJ | traditionalmedicinejournals.com the ischemia/reperfusion (I/R) procedure also increased the levels of pro-inflammatory cytokines along with oxidants in ovarian tissue [8]. Pycnogenol (PYC), investigated for its protective effect against possible damage caused by the ovarian I/R procedure, is a standardized extract of Pinus maritime [9]. In many countries, PYC is used as a dietary supplement and as a phytochemical treatment for various diseases, from chronic inflammation to circulatory disorders. A large number of studies have determined the antioxidant and anti-inflammatory properties of PYC. It has been reported that the strong antioxidant activity of PYC is due to the synergistic interaction of its components [10]. Ozoner et al reported that PYC protects brain tissues by reversing the increase in MDA and pro-inflammatory cytokines and the decrease of total glutathione (tGSH) [13]. Turkler et al also showed that PYC had mitigating effects against cisplatin-induced uterine and ovarian tissue damage in rats [14]. Based on this information, it was thought that PYC might protect the ovaries from I/R injury. However, studies investigating the effect of PYC on I/R-induced ovarian injury were not found in the literature. In this study, the preventive effect of PYC treatment on ovarian injury induced by I/R procedure in rats was investigated using biochemical analysis and histopathological examination. EXPERIMENTAL Animals Eighteen female albino Wistar rats (245 – 258 g) were used in the study. Animals were provided from the Atatürk University Medical Experimental Application and Research Centre. The rats were housed in laboratory rooms at a temperature of 22 ± 2 °C. The rooms were equipped with 12- hour automatic light–dark cycles. The rats were provided with food and water without restriction before and during the experiment. The study was approved by Erzurum Ataturk University Laboratory Animal Research Local Ethics Committee (Dated: 04.30.2020, Meeting no. 4, Decision no. 60), and followed international guidelines for animal studies. Chemicals Thiopental sodium was purchased from I.E ULAGAY (Istanbul, Turkey) and PYC was purchased from Solgar (Leonia, America). Groups The rats used in this study were divided into three groups of six rats each and designated as follows – SG: sham operation group, PCG: pycnogenol (40 mg/kg) group, IRG: ovarian ischemia-reperfusion group and PIR: pycnogenol (40 mg/kg) + ovarian ischemia-reperfusion group. Procedure Sterile conditions were provided for surgical procedures in the experimental design. One hour before anesthesia, PYC (40 mg/kg) was administered orally in the PCG and PIR groups [13]. SG and IRGs were also given normal saline orally. Thiopental sodium (25 mg/kg) was injected intraperitoneally (IP) one hour after administration of pycnogenol or saline. A vertical incision (2 – 3 cm) was made in the appropriate anatomical region of the rats to access the right ovaries in SG, PIR and IRGs (no application was made to the ovaries of SG animals). Two hours later, the clips were excised and the tissues reperfused for another two hours. The rats were sacrificed using sodium thiopental (50 mg/kg) and the right ovaries were excised. The ovarian tissues were subjected to biochemical and histopathological examination. Biochemical analyses Preparation of samples Excised rat ovaries (0.2 g) were weighed, washed with NaCl (0.9 %) to remove blood and subsequently homogenized in liquid nitrogen. For MDA determination, 2 mL of the homogenate was transferred to a 1.15 % potassium chloride solution. To determine total glutathione (tGSH), phosphate buffer (pH = 7.4, 2 mL) was added to homogenate. The solution was subsequently centrifuged and filtrate was used for analysis. Determination of MDA levels For the determination of MDA, the pink-colored compound formed the reaction of thiobarbituric acid and MDA (µmol/g protein) at 100 °C was measured spectrophotometrically [13]. Homogenates were centrifuged (5000 rpm, 20 min) and 250 μL of the clear filtrate was added to 750 μL (0.08 %) thiobarbituric acid, 100 μL (8 %) sodium dodecyl sulphate, 750 μL (20 %) acetic acid and 150 μL purified water and allowed to mix. Then, this mixture was incubated at 100 °C for one hour. N-butanol (2.5 mL) was added and the pink color produced was read at a wavelength of 532 nm. The standard calibration curve was prepared using an appropriate Chinese Traditional Medicine Journal | 2021 | Vol 4 | Issue 1 ISSN : 2693 - 6356 2021 | Vol 4 | Issue 1 CTMJ | traditionalmedicinejournals.com concentration range of 1,1,3,3,3-tetra- methoxypropane [13]. Evaluation of tGSH levels GSH (nmol/g protein) is a compound containing a sulphydryl group in its structure. Sulfhydryl groups reduce 5,5'-dithiobis (2-nitrobenzoic acid) (DTNB), and a yellow color is formed [14]. Homogenates were centrifuged (12,000 rpm, 10 min) and 500 μL of the supernatant was added into test tubes containing 1500 μL of measuring buffer, 100 μL DTNB and 7,900 μL of methanol and the solution was allowed to mix. This mixture was incubated at 37 °C for 30 minutes. The absorbance of the yellow compound was read at 412 nm and the sample concentrations were calculated using a standard curve prepared according to GSH standard [14]. Assessment of NF-κB, TNF-α and IL-1β levels Rat-specific enzyme-linked immunosorbent assay (ELISA) kits were used to determine NFκB (µg/g protein), TNF-α (pg/mL) and IL-1β (pg/mL) concentrations in ovarian tissue homogenates. Kits for rat NF-κB (Catalog no. 201-11-0288) were procured from SunRed (China) while those for TNF- α (Catalog no. YHB1098Ra) and IL-1β (Catalog no. YHB0616Ra) were purchased from Shanghai (China). Analyses were carried out following the manufacturer’s manual. Histopathological analysis For light microscopy evaluation, the samples were placed in a 10 % formaldehyde solution to prevent any deterioration in the histological structures of the tissues. The tissues were then washed and gradually treated with (70 – 100 %) alcohol for dehydration. They were made transparent with xylol and blocks were obtained using paraffin wax. Sections (4 – 5 µm) obtained from these blocks were stained with hematoxylineosin. Tissues were examined and photographed (Olympus DP2-SAL, Olympus® Inc. Tokyo, Japan). The histopathologist who performed the evaluation was not aware of the groups. Tissue damage was graded between 0 and 3 (0: absent, 1: mild, 2: moderate, 3: severe). Follicle classification and counting were performed at 100x magnification. Statistical analysis The IBM SPSS 22 software was used for all statistical analyses. The biochemical and follicle count data were presented as mean ± standard deviation (SD). The data were subjected to the Shapiro-Wilk test, and the results showed that they were normally distributed. A one-way ANOVA was used for analysis. Post-hoc test selection was made based on Levene’s test. The Games-Howell test was used in cases where variance homogeneity was not provided (MDA), and Tukey’s HSD test was used when it was provided (tGSH, NF-κB, TNF-α, IL-1β and follicle count). For histopathological statistics, the Kruskal Wallis test - Mann Whitney U test was used. P < 0.05 was considered statistically significant. RESULTS MDA and tGSH levels Malondialdehyde (MDA) levels were significantly elevated in ovarian tissues obtained from the IRG (5.37 ± 0.23) compared to the sham operation (2.23 ± 0.05) and PYC alone (1.47 ± 0.23) groups (p < 0.001). MDA levels in rats treated with PYC (2.92 ± 0.37) prior to I/R were significantly lower than in the IRG (p < 0.001, Figure 1). On the other hand, tGSH levels were found to be decreased in the IRG (1.71 ± 0.76) compared to the sham operation (4.60 ± 0.17) and PYC alone (5.86 ± 0.07) groups (p < 0.001). This decrease in tGSH levels was reversed by PYC (3.73 ± 0.20) administration prior to I/R (p < 0.001, Figure 1). NF-κB, TNF-α and IL-1β production As shown in Figure 2, NF-κB production in ovarian tissues subjected to I/R (IRG) was higher (5.70 ± 0.33) than in the sham operation (2.39 ± 0.36) and PYC alone (1.65 ± 0.15) groups (p < 0.001). The PYC significantly reversed I/Rinduced increase in NF-κB levels (p < 0.001). There was no significant difference in the NF-κB levels between PIR group and SG (p = 0.220). Furthermore, TNF-α levels were higher in the IRG (4.62 ± 0.19) than in the sham operation (1.72 ± 0.16) and PYC alone (1.21 ± 0.09) groups (p < 0.001). PYC significantly reduced the increase in TNF-α amounts in ovaries subjected to I/R (p < 0.001; Figure 2). In addition, the IRG exhibited a significantly higher IL-1β (6.28 ± 0.20) than those of the sham operation (2.58 ± 0.34) and PYC alone (1.35 ± 0.21) groups (p < 0.001). Pretreatment with PYC significantly reversed the increase in IL-1β levels in ovaries subjected to I/R (p < 0.001, Figure 2). Histopathological findings As shown in Figure 3 A and B and Table 1, microscopic analyses of the ovarian sections of the sham operation and PYC groups show normal Chinese Traditional Medicine Journal | 2021 | Vol 4 | Issue 1 ISSN : 2693 - 6356 2021 | Vol 4 | Issue 1 CTMJ | traditionalmedicinejournals.com histological structure with developing follicle structures, corpus luteum, interstitial area and vessels. In the ovarian sections of I/R group (IRG) however, there was pronounced morphological and cellular degeneration of the developing follicles, abnormal bleeding foci in the corpus luteum and edema in the interstitial region were observed. Figure 1: MDA and tGSH levels in ovarian tissues of experimental groups. Note: *P < 0.001 vs. IRG. MDA: malondialdehyde; tGSH: total glutathione; SG: sham operation; PCG: pycnogenol (40 mg/kg); IRG: ovarian ischemia-reperfusion; PIR: pycnogenol (40 mg/kg) + ovarian ischemia-reperfusion Figure 2: NF-κB, TNF-α and IL-1β levels in ovarian tissues of experimental groups. Note: *P < 0.001 vs. IRG. NF- κB: nuclear factor kappa B; TNF-α: tumor necrosis factor-alpha; IL-1β: interleukin one beta. SG: sham operation; PCG: pycnogenol (40 mg/kg); IRG: ovarian ischemia-reperfusion; PIR: pycnogenol (40 mg/kg) + ovarian ischemia- reperfusion Chinese Traditional Medicine Journal | 2021 | Vol 4 | Issue 1 ISSN : 2693 - 6356 2021 | Vol 4 | Issue 1 CTMJ | traditionalmedicinejournals.com Figure 3 (A – E): Hematoxylin-eosin staining of the ovary section of the experimental groups; A. Healthy control group. DF: developing follicle. Int: interstitial : blood vessel, x100. B.area. CL: corpus luteum. PYC group. DF: developing follicle. Int: interstitial area. : blood vessel, x100. C.CL: corpus luteum. Ischemia/reperfusion group. DF: degeneration in developing follicles, Int: edematous interstitial area, : dilated andCL: degenerated corpus luteum, congested blood vessel, x100. D. Ischemia/reperfusion group. DF: degeneration in developing follicles, Int: dense edematous interstitial : dilated andarea, CL: degenerated corpus luteum, congested blood vessel, x100. E. I/R + PYC group. DF: developing follicle with normal morphology, Int: interstitial area with normal appearance, CL: corpus : normal blood vessel, x100luteum, Severe dilatation and congestion were also noted in the blood vessels (Figure 3 C and Table 1). Furthermore, degeneration was also observed in the oocytes of the developing follicles, and areas of intense edema containing vacuolized cells were found in some places in large interstitial areas (Figure 3 D and Table 1). In contrast, histopathological examination of the treatment group (PIR) detected a normal appearance of the developing follicles and corpus luteum, elimination of edema in the interstitial field and absence of dilatation and congestion of the blood vessels (Figure 3 E and Table 1). As shown in Table 2, I/R procedure decreased the number of developing and primordial follicles compared to rats in the sham operation and PYC-only groups (p < 0.05). The number of developing and primordial follicles counted in PYC + I/R-treated rats was higher than in I/R group (p < 0.05). Atretic follicle and corpus luteum counts were the same in all groups (p > 0.05). DISCUSSION Ovarian ischemia may occur for various reasons, including surgical interventions, ovarian masses or ovarian torsion. It is an emergency gynecological situation that cause serious complications like infertility [15]. Reperfusion of ischemic ovaries after the detorsion procedure causes reperfusion damage. Therefore, it is increasingly recommended to add a conservative treatment to detorsion therapy [1]. The lipid peroxidation process that occurs in the cell due to oxidative stress leads to the formation of free radicals [9]. Malondialdehyde (MDA), the end product of lipid peroxidation, rises in I/R state, indicating the development of oxidative stress [9]. Agents like GSH, which interact with free radicals and are reduced to more stable molecules, also have the ability to repair lipid peroxides [11]. In a study where I/R was performed in rat ovaries, there was an increase in MDA amounts and a depletion in total antioxidant capacity in ovarian tissues [8]. Oxidative damage was detected in I/R group rats’ ovaries, with an increase in MDA levels and a decrease in tGSH levels compared to the sham group rats. Furthermore, in the PYC + I/R group, PYC protected the ovaries Chinese Traditional Medicine Journal | 2021 | Vol 4 | Issue 1 ISSN : 2693 - 6356 2021 | Vol 4 | Issue 1 CTMJ | traditionalmedicinejournals.com against I/R injury by limiting MDA increase and tGSH decrease. This result is in agreement with Ozoner et al who showed that PYC protects brain tissues against I/R injury by inhibiting the rise of MDA and pro-inflammatory cytokines while increasing tGSH levels as well [11]. Also, Ozer Sehirli et al established a model of renal I/R damage and found that MDA levels were significantly reduced in rats receiving a single dose of 10 mg/kg PYC intraperitoneally [9]. NF-κB serves as a transcription factor for the production of several pro- inflammatory cytokines that play important roles in regulating inflammation and immune responses [16]. Previous studies established that ROS increases NF- κB production [17]. In addition, Kocaturk et al found an increase in NF- κB levels in kidney tissues following I/R application [16]. In the current study, I/R application led to an elevation of tissue NF-κB concentrations. The fact that NFκB levels in I/R + PYC group did not increase as in I/R group but were close to those in the sham group suggests that PYC inhibits NF-κB. NF-κB specifically triggers the production of TNF-α, IL1, IL-6, lymphotoxin, and IFN-γ [17]. The results from this study showed that TNF-α and IL-1β levels increased at the tissue level in I/R group. According to the biochemical results, PYC given before I/R significantly suppressed the increase of TNF-α and IL-1β. Ali et al also demonstrated that ovarian I/R increased tissue TNF-α expression in their study [9]. Pycnogenol had a similar effect in kidney tissues exposed to I/R and reversed the increase in tissue TNF-α and IL-1β [16]. The data indicate that PYC suppresses inflammation by reducing I/Rinduced oxidative stress and pro-inflammatory cytokine increase in the ovary. In this study, the protective effect of PYC on ovarian reserve was also evaluated by determining the number of follicle loss. Previously. Turkler et al showed that PYC ameliorated cisplatin-induced histopathological changes in the uterus and ovaries [14]. Additionally, another study showed that pycnogenol reduced liver damage in an I/R rat model [6]. In this study, it was observed that the amount of primordial and developing follicles was lower in the PYC-treated group. Congestion, bleeding, edema and follicular degeneration, which are changes that occur due to I/R damage in ovarian tissue, were also observed histopathologically. Conversely, PYC pretreatment significantly ameliorated I/R-induced ovarian damage. CONCLUSION The results of this study confirm that I/R procedure causes serious damage to ovarian tissues. 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