1.Aerobic glycolysis in colon cancer is repressed by naringin via the HIF1Α pathway.
Guangtao PAN ; Ping ZHANG ; Aiying CHEN ; Yu DENG ; Zhen ZHANG ; Han LU ; Aoxun ZHU ; Cong ZHOU ; Yanran WU ; Sen LI
Journal of Zhejiang University. Science. B 2023;24(3):221-231
Metabolic reprogramming is a common phenomenon in cancer, with aerobic glycolysis being one of its important characteristics. Hypoxia-inducible factor-1α (HIF1Α) is thought to play an important role in aerobic glycolysis. Meanwhile, naringin is a natural flavanone glycoside derived from grapefruits and many other citrus fruits. In this work, we identified glycolytic genes related to HIF1Α by analyzing the colon cancer database. The analysis of extracellular acidification rate and cell function verified the regulatory effects of HIF1Α overexpression on glycolysis, and the proliferation and migration of colon cancer cells. Moreover, naringin was used as an inhibitor of colon cancer cells to illustrate its effect on HIF1Α function. The results showed that the HIF1Α and enolase 2 (ENO2) levels in colon cancer tissues were highly correlated, and their high expression indicated a poor prognosis for colon cancer patients. Mechanistically, HIF1Α directly binds to the DNA promoter region and upregulates the transcription of ENO2; ectopic expression of ENO2 increased aerobic glycolysis in colon cancer cells. Most importantly, we found that the appropriate concentration of naringin inhibited the transcriptional activity of HIF1Α, which in turn decreased aerobic glycolysis in colon cancer cells. Generally, naringin reduces glycolysis in colon cancer cells by reducing the transcriptional activity of HIF1Α and the proliferation and invasion of colon cancer cells. This study helps to elucidate the relationship between colon cancer progression and glucose metabolism, and demonstrates the efficacy of naringin in the treatment of colon cancer.
Glycolysis
;
Colonic Neoplasms/metabolism*
;
Humans
;
Hypoxia-Inducible Factor 1, alpha Subunit/metabolism*
;
Phosphopyruvate Hydratase/metabolism*
;
Flavanones/pharmacology*
;
Cell Line, Tumor
;
Databases, Genetic
;
Cell Proliferation/drug effects*
;
Transfection
;
Warburg Effect, Oncologic
2.Effect of key enzymes ubiquitination sites on the biosynthesis of naringenin.
Mingjia LI ; Jingwen ZHOU ; Jianghua LI
Chinese Journal of Biotechnology 2022;38(2):691-704
Flavonoids have a variety of biological activities and have important applications in food, medicine, cosmetics, and many other fields. Naringenin is a platform chemical for the biosynthesis of many important flavonoids. Ubiquitination plays a pivotal role in the post-translational modification of proteins and participates in the regulation of cellular activities. Ubiquitinated proteins can be degraded by the ubiquitin-protease system, which is important for maintaining the physiological activities of cells, and may also exert a significant impact on the expression of exogenous proteins. In this study, a real-time in-situ detection system for ubiquitination modification has been established in Saccharomyces cerevisiae by using a fluorescence bimolecular complementation approach. The ubiquitination level of protein was characterized by fluorescence intensity. By using the approach, the potential ubiquitination sites of proteins involved in the naringenin biosynthesis pathway have been obtained. The lysine residues of the relevant ubiquitination sites were mutated to arginine to reduce the ubiquitination level. The mutants of tyrosine ammonia-lyase (FjTAL) and chalcone synthase (SjCHS, SmCHS) showed decreased fluorescence, suggested that a decreased ubiquitination level. After fermentation verification, the S. cerevisiae expressing tyrosine ammonia-lyase FjTAL mutant FjTAL-K487R accumulated 74.2 mg/L p-coumaric acid at 72 h, which was 32.3% higher than that of the original FjTAL. The strains expressing chalcone synthase mutants showed no significant change in the titer of naringenin. The results showed that mutation of the potential ubiquitination sites of proteins involved in the naringenin biosynthesis pathway could increase the titer of p-coumaric acid and have positive effect on naringenin biosynthesis.
Biosynthetic Pathways
;
Flavanones/metabolism*
;
Saccharomyces cerevisiae/metabolism*
;
Ubiquitination
3.Wogonoside alleviates high glucose-induced dysfunction of retinal microvascular endothelial cells and diabetic retinopathy in rats by up-regulating SIRT1.
Xiao Li SHAO ; Jiang Yi YU ; Wei Hui NI
Journal of Southern Medical University 2022;42(4):463-472
OBJECTIVE:
To investigate the effects of wogonoside on high glucose-induced dysfunction of human retinal microvascular endothelial cells (hRMECs) and streptozotocin (STZ)-induced diabetic retinopathy in rats and explore the underlying molecular mechanism.
METHODS:
HRMECs in routine culture were treated with 25 mmol/L mannitol or exposed to high glucose (30 mmol/L glucose) and treatment with 10, 20, 30, 40 μmol/L wogonoside. CCK-8 assay and Transwell assay were used to examine cell proliferation and migration, and the changes in tube formation and monolayer cell membrane permeability were tested. ROS, NO and GSH-ST kits were used to evaluate oxidative stress levels in the cells. The expressions of IL-1β and IL-6 in the cells were examined with qRT-PCR and ELISA, and the protein expressions of VEGF, HIF-1α and SIRT1 were detected using Western blotting. We also tested the effect of wogonoside on retinal injury and expressions of HIF-1α, ROS, VEGF, TNF-α, IL-1β, IL-6 and SIRT1 proteins in rat models of STZ-induced diabetic retinopathy.
RESULTS:
High glucose exposure caused abnormal proliferation and migration, promoted angiogenesis, increased membrane permeability (P < 0.05), and induced inflammation and oxidative stress in hRMECs (P < 0.05). Wogonoside treatment concentration-dependently inhibited high glucose-induced changes in hRMECs. High glucose exposure significantly lowered the expression of SIRT1 in hRMECs, which was partially reversed by wogonoside (30 μmol/L) treatment; interference of SIRT1 obviously attenuated the inhibitory effects of wogonoside against high glucose-induced changes in proliferation, migration, angiogenesis, membrane permeability, inflammation and oxidative stress in hRMECs. In rat models of STZ-induced diabetic retinopathy, wogonoside effectively suppressed retinal thickening (P < 0.05), alleviated STZ-induced retinal injury, and increased the expression of SIRT1 in the retinal tissues (P < 0.001).
CONCLUSION
Wogonoside alleviates retinal damage caused by diabetic retinopathy by up-regulating SIRT1 expression.
Animals
;
Diabetes Mellitus/metabolism*
;
Diabetic Retinopathy/metabolism*
;
Endothelial Cells
;
Flavanones
;
Glucose/pharmacology*
;
Glucosides
;
Inflammation/metabolism*
;
Interleukin-6/metabolism*
;
Neovascularization, Pathologic/metabolism*
;
Rats
;
Reactive Oxygen Species/metabolism*
;
Sirtuin 1/metabolism*
;
Streptozocin/pharmacology*
;
Vascular Endothelial Growth Factor A/metabolism*
4.Naringenin inhibits thoracic aortic aneurysm formation in mice with Marfan syndrome.
Zhi Qing LI ; Bing YU ; Ze Yu CAI ; Ying Bao WANG ; Xu ZHANG ; Biao ZHOU ; Xiao Hong FANG ; Fang YU ; Yi FU ; Jin Peng SUN ; Wei LI ; Wei KONG
Journal of Peking University(Health Sciences) 2022;54(5):896-906
OBJECTIVE:
To identify whether naringenin plays a protective role during thoracic aneurysm formation in Marfan syndrome.
METHODS:
To validate the effect of naringenin, Fbn1C1039G/+ mice, the mouse model of Marfan syndrome, were fed with naringenin, and the disease progress was evaluated. The molecular mechanism of naringenin was further investigated via in vitro studies, such as bioluminescence resonance energy transfer (BRET), atomic force microscope and radioligand receptor binding assay.
RESULTS:
Six-week-old Fbn1C1039G/+ mice were fed with naringenin for 20 weeks. Compared with the control group, naringenin significantly suppressed the aortic expansion [Fbn1C1039G/+ vs. Fbn1C1039G/++naringenin: (2.49±0.47) mm, n=18 vs. (1.87±0.19) mm, n=22, P < 0.05], the degradation of elastin, and the expression and activity of matrix metalloproteinase 2 (MMP2) and MMP9 in the ascending aorta of Fbn1C1039G/+ mice. Besides, treatment with naringenin for 6 weeks also attenuated the disease progress among the 20-week-old Fbn1C1039G/+ mice with established thoracic aortic aneurysms [Fbn1C1039G/+ vs. Fbn1C1039G/++naringenin: (2.24±0.23) mm, n=8 vs. (1.90±0.17) mm, n=8, P < 0.05]. To understand the underlying molecular mechanisms, we examined the effects of naringenin on angiotensin Ⅱ type 1 receptor (AT1) signaling and transforming growth factor-β (TGF-β) signaling respectively, which were the dominant signaling pathways contributing to aortopathy in Marfan syndrome as previously reported. The results showed that naringenin decreased angiotensin Ⅱ (Ang Ⅱ)-induced phosphorylation of protein kinase C (PKC) and extracellular regulating kinase 1/2 (ERK1/2) in HEK293A cell overexpressing AT1 receptor. Moreover, naringenin inhibited Ang Ⅱ-induced calcium mobilization and uclear factor of activated T-cells (NFAT) signaling. The internalization of AT1 receptor and its binding to β-arrestin-2 with Ang Ⅱ induction were also suppressed by naringenin. As evidenced by atomic force microscope and radioligand receptor binding assay, naringenin inhibited Ang Ⅱ binding to AT1 receptor. In terms of TGF-β signaling, we found that feeding the mice with naringenin decreased the phosphorylation of Smad2 and ERK1/2 as well as the expression of TGF-β downstream genes. Besides, the serum level of TGF-β was also decreased by naringenin in the Fbn1C1039G/+ mice. Furthermore, we detected the effect of naringenin on platelet, a rich source of TGF-β, both in vivo and in vitro. And we found that naringenin markedly decreased the TGF-β level by inhibiting the activation of platelet.
CONCLUSION
Our study showed that naringenin has a protective effect on thoracic aortic aneurysm formation in Marfan syndrome by suppressing both AT1 and TGF-β signaling.
Angiotensin II/metabolism*
;
Animals
;
Aortic Aneurysm, Thoracic/prevention & control*
;
Calcium/metabolism*
;
Disease Models, Animal
;
Elastin/metabolism*
;
Fibrillin-1/metabolism*
;
Flavanones
;
Marfan Syndrome/metabolism*
;
Matrix Metalloproteinase 2
;
Matrix Metalloproteinase 9
;
Mice
;
Mice, Inbred C57BL
;
Protein Kinase C/metabolism*
;
Receptor, Angiotensin, Type 1/metabolism*
;
Transforming Growth Factor beta/metabolism*
;
Transforming Growth Factors/metabolism*
;
beta-Arrestins/metabolism*
5.Inhibition Effect of Eriodictyol to Growth of DG-75 Cells and the Related Action Mechanism.
Bin LIU ; Dao WANG ; Xia SUN ; Xi-Xi ZHAO ; Ming-Li XIANG ; Li-Min JIN ; Na LI ; Shao-Qiong NIU
Journal of Experimental Hematology 2021;29(6):1790-1796
OBJECTIVE:
To explore the effects of Eriodictyol to the growth, apoptosis and oxidative stress of Burkitt lymphoma (BL) cells and phosphorylation of protein kinase B (AKT) in children.
METHODS:
The effects of Eriodictyol (0, 1.25, 2.5, 5, 10, 20, 40, 80, 160, 320 μmol/L) to viability of BL cell line DG-75 cells were detected by CCK-8. The effects of Eriodictyol (0, 10, 20, 40 μmol/L) to the proliferation activity of DG-75, apoptosis rate, levels of apoptosis-related proteins, oxidative stress indexes [superoxide dismutase (SOD), malondialdehyde (MDA)], mitochondrial membrane potential (MMP) and phosphorylation level of phosphatidylinositol-3-kinase (PI3K)/AKT/mammalian target of rapamycinm (mTOR) were detected by clony formation assay and Wester blot.
RESULTS:
When the treatment concentration of Eriodictyol was 20 μmol/L, the proliferation activity of the cells was decreased (P<0.05). The concentrations at 10, 20, 40 μmol/L were selected for subsequent experiments. Compared with 0 μmol/L Eriodictyol, the proliferation activity of DG-75, SOD activity, MMP, phosphorylation levels of PI3K, AKT and mTOR in 20 and 40 μmol/L Eriodictyol treatment groups were significantly decreased (P<0.05), while cells apoptosis rate, Cleaved-Caspase-3/Caspase-3, Bax/Bcl-2 and MDA level were significantly increased (P<0.05).
CONCLUSION
Eriodictyol may promote the mitochondrial apoptosis pathway by inhibiting the abnormal activation of PI3K/AKT/mTOR to reduce the proliferation activity of DG-75, and inhibit oxidative stress response to increase the apoptosis rate and play anti-tumor roles.
Apoptosis
;
Flavanones
;
Phosphatidylinositol 3-Kinases/metabolism*
;
Signal Transduction
6.Pinocembrin Promotes OPC Differentiation and Remyelination via the mTOR Signaling Pathway.
Qi SHAO ; Ming ZHAO ; Wenwen PEI ; Yingyan PU ; Mingdong LIU ; Weili LIU ; Zhongwang YU ; Kefu CHEN ; Hong LIU ; Benqiang DENG ; Li CAO
Neuroscience Bulletin 2021;37(9):1314-1324
The exacerbation of progressive multiple sclerosis (MS) is closely associated with obstruction of the differentiation of oligodendrocyte progenitor cells (OPCs). To discover novel therapeutic compounds for enhancing remyelination by endogenous OPCs, we screened for myelin basic protein expression using cultured rat OPCs and a library of small-molecule compounds. One of the most effective drugs was pinocembrin, which remarkably promoted OPC differentiation and maturation without affecting cell proliferation and survival. Based on these in vitro effects, we further assessed the therapeutic effects of pinocembrin in animal models of demyelinating diseases. We demonstrated that pinocembrin significantly ameliorated the progression of experimental autoimmune encephalomyelitis (EAE) and enhanced the repair of demyelination in lysolectin-induced lesions. Further studies indicated that pinocembrin increased the phosphorylation level of mammalian target of rapamycin (mTOR). Taken together, our results demonstrated that pinocembrin promotes OPC differentiation and remyelination through the phosphorylated mTOR pathway, and suggest a novel therapeutic prospect for this natural flavonoid product in treating demyelinating diseases.
Animals
;
Cell Differentiation
;
Flavanones
;
Mice
;
Mice, Inbred C57BL
;
Myelin Sheath/metabolism*
;
Oligodendroglia/metabolism*
;
Rats
;
Remyelination
;
Signal Transduction
;
TOR Serine-Threonine Kinases/metabolism*
7.Anti-fibrotic mechanism of Sedum sarmentosum total flavanones in inhibiting activation of HSC by regulating Smads.
Yuan-Can LIN ; Hai-Ying LUO ; Hui-Fang LIU ; Xing-Hai DU
China Journal of Chinese Materia Medica 2020;45(3):631-635
This paper was aimed to observe the interventional effect of Sedum sarmentosum total flavanones on hepatic fibrosis and its possible mechanism through the subcutaneous injection of CCl_4 in rats. Sixty male SD rats were randomly divided into normal control group, model group, low-dose, medium-dose, high-dose S. sarmentosum total flavanones groups(100, 200, 400 mg·kg~(-1)) and silymarin group(200 mg·kg~(-1)). The model of liver fibrosis was established by subcutaneous injection of rats with 40% CCl_4. After the modeling, the drug groups were intragastrically administered with corresponding drugs once a day for consecutively five weeks, while the normal group and the model group were given 0.9% sodium chloride solution during the same period. After the experiment, the general conditions of rats and the pathological changes of liver tissues were observed, and the contents of serum ALT, AST, HA and LN were measured. Besides, the expressions of the protein and relevant mRNA of Smad2/3, Smad4 and α-SMA in rats were detected. Compared with model group, S. sarmentosum total flavanones could significantly increase the rats' body weight, inhibit the increase of liver and spleen index in rats of liver fibrosis, reduce the levels of ALT, AST, HA and LN, and alleviate pathological changes. Meanwhile, compared with the model group, the protein expressions of Smad2/3, Smad4 and α-SMA as well as relevant mRNA expressions in S. sarmentosum total flavanones group were obviously decreased, while Smad7 expression was markedly increased. As a result, S. sarmentosum total flavanones could significantly alleviate CCl_4-induced liver fibrosis, and its anti-hepatic fibrosis mechanism may be related to intervention with Smads pathway, so as to inhibit the activation of HSC.
Animals
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Carbon Tetrachloride
;
Drugs, Chinese Herbal/therapeutic use*
;
Flavanones/therapeutic use*
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Hepatic Stellate Cells/drug effects*
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Liver
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Liver Cirrhosis/drug therapy*
;
Male
;
Rats
;
Rats, Sprague-Dawley
;
Sedum/chemistry*
;
Signal Transduction
;
Smad Proteins/metabolism*
8.Quantitative effect of the expression level of key genes in naringenin synthesis on the accumulation level of target products.
Tingting JIAO ; Jingwen ZHOU ; Sha XU
Chinese Journal of Biotechnology 2019;35(7):1256-1265
Naringenin is a natural flavonoid compound with anti-inflammatory, anti-oxidation, anti-viral, anti-atherosclerosis and other pharmacological activities. It is also an important precursor of other flavonoid synthesis and with great value of application. At present, the production of flavonoids such as naringenin by microbial methods has a low yield due to imbalance of metabolic pathways, which greatly limits its industrial application. In this study, a naringenin-producing strain of Saccharomyces cerevisiae Y-01 was used in the research object. The expression levels of 4-coumaric acid: CoA ligase (4CL), chalcone synthase (CHS) and chalcone isomerase (CHI) were controlled by promoter and copy numbers to investigate the quantitative effect of key enzyme expression level on the accumulation level of target products. The results showed that the correlation between naringenin production and 4CL or CHI expression was not significant while there was a positive correlation with the expression level of CHS. Strain Y-04 with high yield of naringenin was obtained by regulating the expression level of chs gene, and the yield was increased by 4.1-folds compared with the original strain Y-01. This study indicated that CHS is a key regulatory target of naringenin synthesis. Rational regulation of CHS expression can significantly promote the accumulation of naringenin. The related results provide an important theoretical reference for the use of metabolic engineering to strengthen microbial synthesis of important flavonoids such as naringenin.
Flavanones
;
metabolism
;
Metabolic Engineering
;
Saccharomyces cerevisiae
9.7-hydroxy sulfonation of liquiritigenin by recombinant SULT1A3 enzyme and HEK-SULT1A3 cells.
Yi-Dan ZHANG ; Hai-Ying LI ; Fan-Ye LIU ; Jie NIU ; Xiao WANG ; Chao LIANG ; Hua SUN
China Journal of Chinese Materia Medica 2019;44(19):4249-4256
In this study,liquiritigenin sulfonation was characterized using recombinant human sulfotransferases( SULTs). The chemical structure of liquiritigenin sulfate was determined by ultra-high performance liquid chromatography-quadrupole time-of-flight mass spectrometry( UPLC-Q-TOF-MS/MS). Then model fitting and parameter estimation were performed using the Graphpad Prism V5 software. Various SULT enzymes( SULT1 A1,1 A2,1 A3,1 B1,1 C2,1 C4,1 E1 and 2 A1) were able to catalyze the formation of liquiritigenin-7-O-sulfate. Sulfonation of liquiritigenin-7-hydroxy( 7-OH) by these eight SULT enzymes consistently displayed the classical Michaelis-Menten profile. According to the intrinsic clearance( CLint) value,the sulfonation rates of liquiritigenin-7-OH by expressed SULT enzymes followed the following rank order: SULT1 C4 > SULT1 A3 > SULT1 E1 > SULT1 A1 > SULT1 A2 > SULT1 B1 >SULT1 C2>SULT2 A1. Further,liquiritigenin-7-O-sulfonation was significantly correlated with the SULT1 A3 protein levels( P<0. 05).Then,human embryonic kidney( HEK) 293 cells over expressing SULT1 A3( named as HEK-SULT1 A3 cells) were conducted. As a result,liquiritigenin-7-O-sulfate( L-7-S) was rapidly generated upon incubation of the cells with liquiritigenin. Consistent with SULT1 A3,sulfonation of liquiritigenin-7-OH in HEK-SULT1 A3 cells also followed the Michaelis-Menten kinetics. The derived Vmaxvalues was( 0. 315±0. 009) μmol·min-1·g-1,Kmwas( 7. 04±0. 680) μmol·L-1,and CLintwas( 0. 045±0. 005) L·min-1·g-1. Moreover,the sulfonation characters of liquiritigenin( 7-OH) in SULT1 A3 were strongly correlated with that in HEK-SULT1 A3 cells( P<0. 001).The results indicated that HEK-SULT1 A3 cells have shown the catalytic function of SULT1 A3 enzymes. In conclusion,liquiritigenin was subjected to efficient sulfonation,and SULT1 A3 enzyme plays an important role in the sulfonation of liquiritigenin-7-OH. Significant sulfonation should be the main reason for the low bioavailability of liquiritigenin. In addition,HEK-SULT1 A3 cells were conducted and successfully used to evaluate liquiritigenin sulfonation,which will provide an appropriate tool to accurately depict the sulfonation disposition of liquiritigenin in vivo.
Arylsulfotransferase
;
Flavanones/metabolism*
;
Humans
;
Tandem Mass Spectrometry
10.Effect of naringin on oxidative stress and endoplasmic reticulum stress in diabetic cardiomyopathy.
Yu-Fei ZHANG ; Na-Na MENG ; Hou-Zhong LI ; Yi-Jie WEN ; Jie-Ting LIU ; Chun-Lei ZHANG ; Xiao-Huan YUAN ; Xiu-Dong JIN
China Journal of Chinese Materia Medica 2018;43(3):596-602
To explore the protective effect of naringin(Nar) on the injury of myocardium tissues induced by streptozotocin(STZ) in diabetic rats and the relationship with oxidative stress and endoplasmic reticulum stress(ERS), the male SD rats were intraperitoneally injected with streptozotocin(STZ, 60 mg·kg⁻¹) to establish the diabetic rat model and then randomly divided into the type 1 diabetic rat group(T1DR), the low-dose Nar group(Nar25), the middle-dose Nar group(Nar50) and the high-dose Nar group(Nar100). The normal rats were designed as control group(Con). Nar25, Nar50, Nar100 groups were orally administered with Nar at the doses of 25.0, 50.0, 100.0 mg·kg⁻¹ per day, respectively, while the normal group and the T1DR group were orally administered with saline. At the 8th week after treatment, fasting plasma glucose and heart mass index were measured. The pathological changes in myocardial tissues were observed by microscope. The cardiac malondialdehyde(MDA) level and superoxide dismutase(SOD) activities were measured. The gene and protein expressions of glucose-regulated protein 78(GRP78), C/EBP homologous protein(CHOP), cysteinyl aspartate-specific proteinase 12(caspase 12) were detected by qRT-PCR and Western blot. According to the results, compared with control group, the myocardial structure was damaged, the content of MDA was increased, while the activities of SOD were decreased(<0.05) in T1DR group. GRP78, CHOP and caspase 12 mRNA and protein expressions were increased significantly in T1DR group(<0.05, <0.01). Compared with T1DR group, myocardial structure damage was alleviated in Nar treatment group. The content of MDA was decreased, while the activities of SOD were increased significantly. The mRNA and protein expressions of GRP78, CHOP and caspase 12 were increased, especially in middle and high-dose groups(<0.05, <0.01). After treatment with Nar for 8 weeks, myocardial structure damage was obviously alleviated in Nar treatment groups. The content of MDA was decreased, while the activities of SOD were increased significantly in myocardial tissues. The mRNA and protein expressions of GRP78, CHOP and caspase 12 were increased, especially in middle and high-dose groups(<0.05, <0.01). The findings suggest that Nar may protect myocardium in diabetic rats by reducing mitochondrial oxidative stress injuries and inhibiting the ERS-mediated cell apoptosis pathway.
Animals
;
Apoptosis
;
Cardiotonic Agents
;
pharmacology
;
Caspase 12
;
metabolism
;
Diabetes Mellitus, Experimental
;
Diabetic Cardiomyopathies
;
drug therapy
;
Endoplasmic Reticulum Stress
;
drug effects
;
Flavanones
;
pharmacology
;
Heat-Shock Proteins
;
metabolism
;
Male
;
Malondialdehyde
;
metabolism
;
Oxidative Stress
;
drug effects
;
Rats
;
Rats, Sprague-Dawley
;
Superoxide Dismutase
;
metabolism
;
Transcription Factor CHOP
;
metabolism

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