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Investigation of the Effects of Chrysin Against Amoxycillin-Clavulanic Acid-Induced Kidney Injury in Rats

Year 2025, Volume: 36 Issue: 2, 139 - 145, 27.07.2025
https://doi.org/10.36483/vanvetj.1699352

Abstract

The amoxycillin-clavulanic acid (ACA) used in the treatment of various bacterial infections often causes drug-induced tissue damage, but the mechanism of this damage has not yet been fully elucidated. Chrysin (CHR) is a natural flavonoid with various pharmacological properties as well as antioxidant and anti-inflammatory properties. In this study, the protective effect of CHR against ACA-induced kidney damage, which is frequently used in human and animal health, was investigated. Twenty-eight female rats were divided into four groups as control, CHR, ACA and ACA+CHR. ACA (30 mg/kg) and CHR (50 mg/kg) were administered orally once a day for seven days. Renal function, oxidative stress and inflammation parameters were analyzed to determine renal tissue damage. Histopathologic analysis was also performed to detect tissue damage and structural changes. According to the data obtained from these analyses, ACA increased urea and creatinine levels in kidney tissue. ACA administration also increased malondialdehyde (MDA) and decreased glutathione peroxidase (GPx), superoxide dismutase (SOD), catalase (CAT) activities and glutathione (GSH). Nuclear factor kappa B (NF-B), tumor necrosis factor-alpha (TNF-α) and interleukin 1β (IL-1β) expression levels were found to increase. Administration of CHR together with ACA decreased urea, creatinine, MDA, NF-B, TNF-α, IL-1β levels and increased GSH level and GPx, SOD, CAT activities. When the findings were evaluated together, it was determined that ACA caused renal damage by increasing renal function levels, oxidative stress and inflammation, while supportive treatment of CHR reduced renal damage by bringing these parameters closer to normal.

Ethical Statement

Ethical approval was obtained from Atatürk University Animal Experiments Local Ethics Committee (Approval No: 2025/01/06).

Supporting Institution

No

Project Number

No

Thanks

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References

  • Abouzed TK, Sherif EAE, Barakat MES (2021). Assessment of gentamicin and cisplatin-induced kidney damage mediated via necrotic and apoptosis genes in albino rats. BMC Vet Res, 17 (1), 350.
  • Abukhalil MH, Al-Alami Z, Altaie HAA et al. (2025). Galangin prevents gentamicin-induced nephrotoxicity by modulating oxidative damage, inflammation and apoptosis in rats. Naunyn Schmiedebergs Arch Pharmacol, 398 (4), 3717-3729.
  • Aebi H (1984). [13] Catalase in vitro. Methods Enzymol. 105, 121-126.
  • Akaras N, Ileriturk M, Gur C et al. (2023a). The protective effects of chrysin on cadmium-induced pulmonary toxicity; a multi-biomarker approach. Environ Sci Pollut Res Int, 30 (38), 89479-89494.
  • Akaras N, Gur C, Kucukler S, Kandemir FM (2023b). Zingerone reduces sodium arsenite-induced nephrotoxicity by regulating oxidative stress, inflammation, apoptosis and histopathological changes. Chem Biol Interact, 374, 110410.
  • Akaras N, Kucukler S, Gur C, Ileriturk M, Kandemir FM (2024). Sinapic acid protects against lead acetate-induced lung toxicity by reducing oxidative stress, apoptosis, inflammation, and endoplasmic reticulum stress damage. Environ Toxicol, 39 (7), 3820-3832.
  • Akarsu SA, Gür C, İleritürk M et al. (2023). Effect of syringic acid on oxidative stress, autophagy, apoptosis, inflammation pathways against testicular damage induced by lead acetate. J Trace Elem Med Biol, 80, 127315.
  • Akarsu SA, Gür C, Küçükler S (2024). Protective Effects of Syringic Acid Against Oxidative Damage, Apoptosis, Autophagy, Inflammation, Testicular Histopathologic Disorders, and Impaired Sperm Quality in the Testicular Tissue of Rats Induced by Mercuric Chloride. Environ Toxicol, 39 (10), 4803-4814.
  • Aksu EH, Kandemir FM, Küçükler S, Mahamadu A (2018). Improvement in colistin-induced reproductive damage, apoptosis, and autophagy in testes via reducing oxidative stress by chrysin. J Biochem Mol Toxicol, 32 (11), e22201.
  • Aydin M, Cevik A, Kandemir FM, Yuksel M, Apaydin AM (2009). Evaluation of hormonal change, biochemical parameters, and histopathological status of uterus in rats exposed to 50-Hz electromagnetic field. Toxicol Ind Health, 25 (3), 153-158.
  • Ayusso LL, Girol AP, Souza HR et al. (2024). The anti-inflammatory properties of green tea extract protect against gentamicin-induced kidney injury. Biomed Pharmacother, 179, 117267.
  • Babaeenezhad E, Dezfoulian O, Sarabi MM, Ahmadvand H (2024). Monoterpene linalool restrains gentamicin-mediated acute kidney injury in rats by subsiding oxidative stress, apoptosis, and the NF-κB/iNOS/TNF-α/IL-1β pathway and regulating TGF-β. Naunyn Schmiedebergs Arch Pharmacol, 397 (8), 5701-5714.
  • Badr NS, Talaat A, El-Saidy SA, Ghoneim AZA (2025). Revealing Sarcophyton extract's alleviating potential against gentamicin-induced renal and testicular toxicity in rat model. JOBAZ, 86, 9.
  • Bencheikh N, Bouhrim M, Kharchoufa L et al. (2021). The Nephroprotective Effect of Zizyphus lotus L. (Desf.) Fruits in a Gentamicin-Induced Acute Kidney Injury Model in Rats: A Biochemical and Histopathological Investigation. Molecules, 26 (16), 4806.
  • Cakmak F, Kucukler S, Gur C et al. (2023). Morin provides therapeutic effect by attenuating oxidative stress, inflammation, endoplasmic reticulum stress, autophagy, apoptosis, and oxidative DNA damage in testicular toxicity caused by ifosfamide in rats. Iran J Basic Med Sci, 26 (10), 1227-1236.
  • Çelik H, Kucukler S, Çomaklı S et al. (2020). Neuroprotective effect of chrysin on isoniazid-induced neurotoxicity via suppression of oxidative stress, inflammation and apoptosis in rats. Neurotoxicology, 81, 197-208.
  • Daoudi NE, Marghich M, Aziz M et al. (2025). Comparative analysis of nephroprotective effects of roasted and unroasted argan seed oils against gentamicin-induced nephrotoxicity in Wistar rats. S Afr J Bot, 177, 100-108.
  • Ekinci Akdemir FN, Yildirim S, Kandemir FM (2025). Protective Effects of Baicalein and Bergenin Against Gentamicin-Induced Hepatic and Renal Injuries in Rats: An Immunohistochemical and Biochemical Study. Basic Clin Pharmacol Toxicol, 136 (1), e14121.
  • Elgendy SA, Soliman MM, Shukry M et al. (2024). Screening impacts of Tilmicosin-induced hepatic and renal toxicity in rats: protection by Rhodiola rosea extract through the involvement of oxidative stress, antioxidants, and inflammatory cytokines biomarkers. Naunyn Schmiedebergs Arch Pharmacol, 397 (10), 7623-7637.
  • El-Emam MMA, Mostafa M, Farag AA et al. (2023). The Potential Effects of Quercetin-Loaded Nanoliposomes on Amoxicillin/Clavulanate-Induced Hepatic Damage: Targeting the SIRT1/Nrf2/NF-κB Signaling Pathway and Microbiota Modulation. Antioxidants (Basel), 12 (8), 1487.
  • El-Hosseiny LS, Alqurashy NN, Sheweita SA (2016). Oxidative Stress Alleviation by Sage Essential Oil in Co-amoxiclav induced Hepatotoxicity in Rats. Int J Biomed Sci, 12 (2), 71-78.
  • Gur C, Kandemir FM (2023). Molecular and biochemical investigation of the protective effects of rutin against liver and kidney toxicity caused by malathion administration in a rat model. Environ Toxicol, 38 (3), 555-565.
  • Gur C, Akarsu SA, Akaras N, Tuncer SÇ, Kandemir FM (2023). Carvacrol reduces abnormal and dead sperm counts by attenuating sodium arsenite-induced oxidative stress, inflammation, apoptosis, and autophagy in the testicular tissues of rats. Environ Toxicol, 38 (6), 1265-1276.
  • Hassanein EHM, Ali FEM, Kozman MR, El-Ghafar OAMA (2021). Umbelliferone attenuates gentamicin-induced renal toxicity by suppression of TLR-4/NF-κB-p65/NLRP-3 and JAK1/STAT-3 signaling pathways. Environ Sci Pollut Res Int, 28 (9), 11558-11571.
  • Ileriturk M, Kandemir O, Kandemir FM (2022). Evaluation of protective effects of quercetin against cypermethrin-induced lung toxicity in rats via oxidative stress, inflammation, apoptosis, autophagy, and endoplasmic reticulum stress pathway. Environ Toxicol, 37 (11), 2639-2650.
  • Jamshidi HR, Negintaji S (2021). Effects of Thymol on Co-amoxiclav-Induced Hepatotoxicity in Rats. IJML, 8 (1), 44-54.
  • Kankılıç NA, Şimşek H, Akaras N et al. (2024a). The ameliorative effects of chrysin on bortezomib-induced nephrotoxicity in rats: Reduces oxidative stress, endoplasmic reticulum stress, inflammation damage, apoptotic and autophagic death. Food Chem Toxicol, 190, 114791.
  • Kankılıç NA, Şimşek H, Akaras N, et al. (2024b). Protective effects of naringin on colistin-induced damage in rat testicular tissue: Modulating the levels of Nrf-2/HO-1, AKT-2/FOXO1A, Bax/Bcl2/Caspase-3, and Beclin-1/LC3A/LC3B signaling pathways. J Biochem Mol Toxicol, 38 (2), e23643.
  • Kucukler S, Benzer F, Yildirim S et al. (2021). Protective Effects of Chrysin Against Oxidative Stress and Inflammation Induced by Lead Acetate in Rat Kidneys: a Biochemical and Histopathological Approach. Biol Trace Elem Res, 199 (4), 1501-1514.
  • Küçükler S, Kandemir FM, Yıldırım S (2022). Protective effect of chrysin on indomethacin induced gastric ulcer in rats: role of multi-pathway regulation. Biotech Histochem, 97 (7), 490-503.
  • Küçükler S, Çelik O, Özdemir S et al. (2024a). Effects of rutin against deltamethrin-induced testicular toxicity in rats: Biochemical, molecular, and pathological studies. Food Chem Toxicol, 186, 114562.
  • Küçükler S, Caglayan C, Özdemir S, Çomaklı S, Kandemir FM (2024b). Hesperidin counteracts chlorpyrifos-induced neurotoxicity by regulating oxidative stress, inflammation, and apoptosis in rats. Metab Brain Dis, 39 (4), 509-522.
  • Lawrence RA, Burk RF (1976). Glutathione peroxidase activity in selenium-deficient rat liver. Biochem Biophys Res Commun, 71 (4), 952-958.
  • Livak KJ, Schmittgen TD (2001). Analysis of relative gene expression data using real-time quantitative PCR and the 2−ΔΔCT method. Methods. 25, 402-408.
  • Lowry OH, Rosebrough NJ, Farr AL, Randall RJ (1951). Protein measurement with the Folin phenol reagent. J Biol Chem, 193 (1), 265-275.
  • Mohammed H, Galal AT, Rahman MA, Hosny YB (2024). The Possible Ameliorative Effect of Vitamin C Against Amoxicillin-Clavulanic Acid Toxicity in the Liver of Adult Male Albino Rats. SMJ, 28 (2), 64-73.
  • Öztürk AB, Şimşek H, Akaras N, Kandemir FM (2025). Chrysin Counteracts Sodium Hydroxide-Induced Alkali Esophageal Burn by Regulating Beclin-1/HO-1/NQO1, PERK/IRE1-α/ATF-6, Oxidative Stress, Inflammation, Apoptosis Signaling Pathways and Ki-67, EGF Expressions in Rats. Bratisl Med J,
  • Placer ZA, Cushman LL, Johnson BC (1966). Estimation of product of lipid peroxidation (malonyl dialdehyde) in biochemical systems. Anal Biochem, 16 (2), 359-364.
  • Sedlak J, Lindsay RH (1968). Estimation of total, protein-bound, and nonprotein sulfhydryl groups in tissue with Ellman’s reagent. Anal Biochem, 25, 192-205.
  • Shehata AM, Salem FMS, El-Saied EM et al. (2022). Evaluation of the Ameliorative Effect of Zinc Nanoparticles against Silver Nanoparticle-Induced Toxicity in Liver and Kidney of Rats. Biol Trace Elem Res, 200 (3), 1201-1211.
  • Sun Y, Oberleyi LW, Li Y (1988). A simple method for clinical assay of superoxide dismutase. Clin Chem, 34 (3), 497-500.
  • Şimşek H, Akaras N, Gür C, Küçükler S, Kandemir FM (2023). Beneficial effects of Chrysin on Cadmium-induced nephrotoxicity in rats: Modulating the levels of Nrf2/HO-1, RAGE/NLRP3, and Caspase-3/Bax/Bcl-2 signaling pathways. Gene, 875, 147502.
  • Şimşek H, Gür C, Küçükler S et al. (2024). Carvacrol Reduces Mercuric Chloride-Induced Testicular Toxicity by Regulating Oxidative Stress, Inflammation, Apoptosis, Autophagy, and Histopathological Changes. Biol Trace Elem Res, 202 (10), 4605-4617.
  • Temel Y, Çağlayan C, Ahmed BM, Kandemir FM, Çiftci M (2021). The effects of chrysin and naringin on cyclophosphamide-induced erythrocyte damage in rats: biochemical evaluation of some enzyme activities in vivo and in vitro. Naunyn Schmiedebergs Arch Pharmacol, 394 (4), 645-654.
  • Tuncer SÇ, Akarsu SA, Küçükler S, Gür C, Kandemir FM (2023). Effects of sinapic acid on lead acetate-induced oxidative stress, apoptosis and inflammation in testicular tissue. Environ Toxicol, 38 (11), 2656-2667.
  • Varışlı B, Caglayan C, Kandemir FM et al. (2023). Chrysin mitigates diclofenac-induced hepatotoxicity by modulating oxidative stress, apoptosis, autophagy and endoplasmic reticulum stress in rats. Mol Biol Rep, 50 (1), 433-442.
  • Yardim A, Gur C, Selim Comakli S et al. (2022). Investigation of the effects of berberine on bortezomib-induced sciatic nerve and spinal cord damage in rats through pathways involved in oxidative stress and neuro-inflammation. Neurotoxicology, 89, 127-139.
  • Yıldız MO, Çelik H, Caglayan C et al. (2022). Neuromodulatory effects of hesperidin against sodium fluoride-induced neurotoxicity in rats: Involvement of neuroinflammation, endoplasmic reticulum stress, apoptosis and autophagy. Neurotoxicology. 90, 197-204.
  • Yilmaz S, Gur C, Kucukler S, Akaras N, Kandemir FM (2024a). Zingerone attenuates sciatic nerve damage caused by sodium arsenite by inhibiting NF-κB, caspase-3, and ATF-6/CHOP pathways and activating the Akt2/FOXO1 pathway. Iranian J Basic Med Sci, 27 (4), 485-491.
  • Yılmaz S, Küçükler S, Şimşek H, Aygörmez S, Kandemir FM (2024b). Naringin protects against colistin-induced sciatic nerve damage by reducing oxidative stress, apoptosis and inflammation damage. JECM, 41(1), 53-59.
  • Wu O, Li W, Zhao J et al. (2021). Apigenin ameliorates doxorubicin-induced renal injury via inhibition of oxidative stress and inflammation. Biomed Pharmacother, 137, 111308.

Sıçanlarda Amoksisilin/Klavulanik Asit ile Oluşturulan Böbrek Hasarına Karşı Krisin’in Etkilerinin Araştırılması

Year 2025, Volume: 36 Issue: 2, 139 - 145, 27.07.2025
https://doi.org/10.36483/vanvetj.1699352

Abstract

Çeşitli bakteriyel enfeksiyonların tedavisinde kullanılan amoksisilin-klavulanik asit (ACA), çoğunlukla ilaç kaynaklı doku hasarına neden olmaktadır fakat bu hasarın mekanizması henüz tam olarak aydınlatılmamıştır. Krisin (CHR), antioksidan ve antiinflamatuar gibi özelliklerinin yanı sıra çeşitli farmakolojik özellikleri bulunan doğal bir flavonoiddir. Bu çalışmada, insan ve hayvan sağlığında sıklıkla kullanılan ACA’nın neden olduğu böbrek hasarına karşı CHR’nin koruyucu etkisi araştırıldı. Yirmi sekiz adet dişi sıçan kontrol, CHR, ACA ve ACA+CHR olmak üzere dört grup ayrıldı. ACA (30 mg/kg) ve CHR (50 mg/kg) yedi gün boyunca günde bir kez oral yoldan uygulandı. Böbrek dokusunda hasarı belirlemek için böbrek fonksiyonu, oksidatif stres ve inflamasyon parametreleri analiz edildi. Doku hasarı ve yapısal değişiklikleri tespit etmek için histopatolojik analiz yapıldı. Bu analizler sonucunda elde edilen verilere göre ACA, böbrek dokusunda üre ve kreatin düzeylerini artırdı. ACA uygulamasının aynı zamanda malondialdehit (MDA)’i arttırdığı, glutatyon peroksidaz (GPx), süperoksit dismutaz (SOD), katalaz (CAT) aktivitelerini ile glutatyon (GSH)’u azalttığı bulundu. Nuclear factor kappa B (NF-B), tumor necrosis factor-alpha (TNF-α) ve interleukin 1β (IL-1β) ekspresyon düzeylerini artırdığı tespit edildi. CHR’nin ACA ile birlikte uygulanmasının üre, kreatin, MDA, NF-B, TNF-α, IL-1β düzeylerini azalttığı, GSH düzeyi ile GPx, SOD, CAT aktivitelerini artırdığı belirlendi. Elde edilen bulgular birlikte değerlendirildiğinde, ACA’nın böbrek fonksiyon düzeylerini, oksidatif stresi ve inflamasyonu artırarak böbrek hasarına neden olduğu, CHR’nin destekleyici tedavisinin ise bu parametreleri normale yakınlaştırarak böbrekte hasarı azalttığı tespit edildi.

Project Number

No

References

  • Abouzed TK, Sherif EAE, Barakat MES (2021). Assessment of gentamicin and cisplatin-induced kidney damage mediated via necrotic and apoptosis genes in albino rats. BMC Vet Res, 17 (1), 350.
  • Abukhalil MH, Al-Alami Z, Altaie HAA et al. (2025). Galangin prevents gentamicin-induced nephrotoxicity by modulating oxidative damage, inflammation and apoptosis in rats. Naunyn Schmiedebergs Arch Pharmacol, 398 (4), 3717-3729.
  • Aebi H (1984). [13] Catalase in vitro. Methods Enzymol. 105, 121-126.
  • Akaras N, Ileriturk M, Gur C et al. (2023a). The protective effects of chrysin on cadmium-induced pulmonary toxicity; a multi-biomarker approach. Environ Sci Pollut Res Int, 30 (38), 89479-89494.
  • Akaras N, Gur C, Kucukler S, Kandemir FM (2023b). Zingerone reduces sodium arsenite-induced nephrotoxicity by regulating oxidative stress, inflammation, apoptosis and histopathological changes. Chem Biol Interact, 374, 110410.
  • Akaras N, Kucukler S, Gur C, Ileriturk M, Kandemir FM (2024). Sinapic acid protects against lead acetate-induced lung toxicity by reducing oxidative stress, apoptosis, inflammation, and endoplasmic reticulum stress damage. Environ Toxicol, 39 (7), 3820-3832.
  • Akarsu SA, Gür C, İleritürk M et al. (2023). Effect of syringic acid on oxidative stress, autophagy, apoptosis, inflammation pathways against testicular damage induced by lead acetate. J Trace Elem Med Biol, 80, 127315.
  • Akarsu SA, Gür C, Küçükler S (2024). Protective Effects of Syringic Acid Against Oxidative Damage, Apoptosis, Autophagy, Inflammation, Testicular Histopathologic Disorders, and Impaired Sperm Quality in the Testicular Tissue of Rats Induced by Mercuric Chloride. Environ Toxicol, 39 (10), 4803-4814.
  • Aksu EH, Kandemir FM, Küçükler S, Mahamadu A (2018). Improvement in colistin-induced reproductive damage, apoptosis, and autophagy in testes via reducing oxidative stress by chrysin. J Biochem Mol Toxicol, 32 (11), e22201.
  • Aydin M, Cevik A, Kandemir FM, Yuksel M, Apaydin AM (2009). Evaluation of hormonal change, biochemical parameters, and histopathological status of uterus in rats exposed to 50-Hz electromagnetic field. Toxicol Ind Health, 25 (3), 153-158.
  • Ayusso LL, Girol AP, Souza HR et al. (2024). The anti-inflammatory properties of green tea extract protect against gentamicin-induced kidney injury. Biomed Pharmacother, 179, 117267.
  • Babaeenezhad E, Dezfoulian O, Sarabi MM, Ahmadvand H (2024). Monoterpene linalool restrains gentamicin-mediated acute kidney injury in rats by subsiding oxidative stress, apoptosis, and the NF-κB/iNOS/TNF-α/IL-1β pathway and regulating TGF-β. Naunyn Schmiedebergs Arch Pharmacol, 397 (8), 5701-5714.
  • Badr NS, Talaat A, El-Saidy SA, Ghoneim AZA (2025). Revealing Sarcophyton extract's alleviating potential against gentamicin-induced renal and testicular toxicity in rat model. JOBAZ, 86, 9.
  • Bencheikh N, Bouhrim M, Kharchoufa L et al. (2021). The Nephroprotective Effect of Zizyphus lotus L. (Desf.) Fruits in a Gentamicin-Induced Acute Kidney Injury Model in Rats: A Biochemical and Histopathological Investigation. Molecules, 26 (16), 4806.
  • Cakmak F, Kucukler S, Gur C et al. (2023). Morin provides therapeutic effect by attenuating oxidative stress, inflammation, endoplasmic reticulum stress, autophagy, apoptosis, and oxidative DNA damage in testicular toxicity caused by ifosfamide in rats. Iran J Basic Med Sci, 26 (10), 1227-1236.
  • Çelik H, Kucukler S, Çomaklı S et al. (2020). Neuroprotective effect of chrysin on isoniazid-induced neurotoxicity via suppression of oxidative stress, inflammation and apoptosis in rats. Neurotoxicology, 81, 197-208.
  • Daoudi NE, Marghich M, Aziz M et al. (2025). Comparative analysis of nephroprotective effects of roasted and unroasted argan seed oils against gentamicin-induced nephrotoxicity in Wistar rats. S Afr J Bot, 177, 100-108.
  • Ekinci Akdemir FN, Yildirim S, Kandemir FM (2025). Protective Effects of Baicalein and Bergenin Against Gentamicin-Induced Hepatic and Renal Injuries in Rats: An Immunohistochemical and Biochemical Study. Basic Clin Pharmacol Toxicol, 136 (1), e14121.
  • Elgendy SA, Soliman MM, Shukry M et al. (2024). Screening impacts of Tilmicosin-induced hepatic and renal toxicity in rats: protection by Rhodiola rosea extract through the involvement of oxidative stress, antioxidants, and inflammatory cytokines biomarkers. Naunyn Schmiedebergs Arch Pharmacol, 397 (10), 7623-7637.
  • El-Emam MMA, Mostafa M, Farag AA et al. (2023). The Potential Effects of Quercetin-Loaded Nanoliposomes on Amoxicillin/Clavulanate-Induced Hepatic Damage: Targeting the SIRT1/Nrf2/NF-κB Signaling Pathway and Microbiota Modulation. Antioxidants (Basel), 12 (8), 1487.
  • El-Hosseiny LS, Alqurashy NN, Sheweita SA (2016). Oxidative Stress Alleviation by Sage Essential Oil in Co-amoxiclav induced Hepatotoxicity in Rats. Int J Biomed Sci, 12 (2), 71-78.
  • Gur C, Kandemir FM (2023). Molecular and biochemical investigation of the protective effects of rutin against liver and kidney toxicity caused by malathion administration in a rat model. Environ Toxicol, 38 (3), 555-565.
  • Gur C, Akarsu SA, Akaras N, Tuncer SÇ, Kandemir FM (2023). Carvacrol reduces abnormal and dead sperm counts by attenuating sodium arsenite-induced oxidative stress, inflammation, apoptosis, and autophagy in the testicular tissues of rats. Environ Toxicol, 38 (6), 1265-1276.
  • Hassanein EHM, Ali FEM, Kozman MR, El-Ghafar OAMA (2021). Umbelliferone attenuates gentamicin-induced renal toxicity by suppression of TLR-4/NF-κB-p65/NLRP-3 and JAK1/STAT-3 signaling pathways. Environ Sci Pollut Res Int, 28 (9), 11558-11571.
  • Ileriturk M, Kandemir O, Kandemir FM (2022). Evaluation of protective effects of quercetin against cypermethrin-induced lung toxicity in rats via oxidative stress, inflammation, apoptosis, autophagy, and endoplasmic reticulum stress pathway. Environ Toxicol, 37 (11), 2639-2650.
  • Jamshidi HR, Negintaji S (2021). Effects of Thymol on Co-amoxiclav-Induced Hepatotoxicity in Rats. IJML, 8 (1), 44-54.
  • Kankılıç NA, Şimşek H, Akaras N et al. (2024a). The ameliorative effects of chrysin on bortezomib-induced nephrotoxicity in rats: Reduces oxidative stress, endoplasmic reticulum stress, inflammation damage, apoptotic and autophagic death. Food Chem Toxicol, 190, 114791.
  • Kankılıç NA, Şimşek H, Akaras N, et al. (2024b). Protective effects of naringin on colistin-induced damage in rat testicular tissue: Modulating the levels of Nrf-2/HO-1, AKT-2/FOXO1A, Bax/Bcl2/Caspase-3, and Beclin-1/LC3A/LC3B signaling pathways. J Biochem Mol Toxicol, 38 (2), e23643.
  • Kucukler S, Benzer F, Yildirim S et al. (2021). Protective Effects of Chrysin Against Oxidative Stress and Inflammation Induced by Lead Acetate in Rat Kidneys: a Biochemical and Histopathological Approach. Biol Trace Elem Res, 199 (4), 1501-1514.
  • Küçükler S, Kandemir FM, Yıldırım S (2022). Protective effect of chrysin on indomethacin induced gastric ulcer in rats: role of multi-pathway regulation. Biotech Histochem, 97 (7), 490-503.
  • Küçükler S, Çelik O, Özdemir S et al. (2024a). Effects of rutin against deltamethrin-induced testicular toxicity in rats: Biochemical, molecular, and pathological studies. Food Chem Toxicol, 186, 114562.
  • Küçükler S, Caglayan C, Özdemir S, Çomaklı S, Kandemir FM (2024b). Hesperidin counteracts chlorpyrifos-induced neurotoxicity by regulating oxidative stress, inflammation, and apoptosis in rats. Metab Brain Dis, 39 (4), 509-522.
  • Lawrence RA, Burk RF (1976). Glutathione peroxidase activity in selenium-deficient rat liver. Biochem Biophys Res Commun, 71 (4), 952-958.
  • Livak KJ, Schmittgen TD (2001). Analysis of relative gene expression data using real-time quantitative PCR and the 2−ΔΔCT method. Methods. 25, 402-408.
  • Lowry OH, Rosebrough NJ, Farr AL, Randall RJ (1951). Protein measurement with the Folin phenol reagent. J Biol Chem, 193 (1), 265-275.
  • Mohammed H, Galal AT, Rahman MA, Hosny YB (2024). The Possible Ameliorative Effect of Vitamin C Against Amoxicillin-Clavulanic Acid Toxicity in the Liver of Adult Male Albino Rats. SMJ, 28 (2), 64-73.
  • Öztürk AB, Şimşek H, Akaras N, Kandemir FM (2025). Chrysin Counteracts Sodium Hydroxide-Induced Alkali Esophageal Burn by Regulating Beclin-1/HO-1/NQO1, PERK/IRE1-α/ATF-6, Oxidative Stress, Inflammation, Apoptosis Signaling Pathways and Ki-67, EGF Expressions in Rats. Bratisl Med J,
  • Placer ZA, Cushman LL, Johnson BC (1966). Estimation of product of lipid peroxidation (malonyl dialdehyde) in biochemical systems. Anal Biochem, 16 (2), 359-364.
  • Sedlak J, Lindsay RH (1968). Estimation of total, protein-bound, and nonprotein sulfhydryl groups in tissue with Ellman’s reagent. Anal Biochem, 25, 192-205.
  • Shehata AM, Salem FMS, El-Saied EM et al. (2022). Evaluation of the Ameliorative Effect of Zinc Nanoparticles against Silver Nanoparticle-Induced Toxicity in Liver and Kidney of Rats. Biol Trace Elem Res, 200 (3), 1201-1211.
  • Sun Y, Oberleyi LW, Li Y (1988). A simple method for clinical assay of superoxide dismutase. Clin Chem, 34 (3), 497-500.
  • Şimşek H, Akaras N, Gür C, Küçükler S, Kandemir FM (2023). Beneficial effects of Chrysin on Cadmium-induced nephrotoxicity in rats: Modulating the levels of Nrf2/HO-1, RAGE/NLRP3, and Caspase-3/Bax/Bcl-2 signaling pathways. Gene, 875, 147502.
  • Şimşek H, Gür C, Küçükler S et al. (2024). Carvacrol Reduces Mercuric Chloride-Induced Testicular Toxicity by Regulating Oxidative Stress, Inflammation, Apoptosis, Autophagy, and Histopathological Changes. Biol Trace Elem Res, 202 (10), 4605-4617.
  • Temel Y, Çağlayan C, Ahmed BM, Kandemir FM, Çiftci M (2021). The effects of chrysin and naringin on cyclophosphamide-induced erythrocyte damage in rats: biochemical evaluation of some enzyme activities in vivo and in vitro. Naunyn Schmiedebergs Arch Pharmacol, 394 (4), 645-654.
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There are 51 citations in total.

Details

Primary Language English
Subjects Veterinary Biochemistry
Journal Section Araştırma Makaleleri
Authors

Serpil Aygörmez 0000-0002-5675-5096

Elif Dalkılınç 0009-0005-1008-111X

Nurhan Akaras 0000-0002-8457-9448

Şaban Maraşlı 0000-0003-0182-6712

Project Number No
Publication Date July 27, 2025
Submission Date May 14, 2025
Acceptance Date July 22, 2025
Published in Issue Year 2025 Volume: 36 Issue: 2

Cite

APA Aygörmez, S., Dalkılınç, E., Akaras, N., Maraşlı, Ş. (2025). Investigation of the Effects of Chrysin Against Amoxycillin-Clavulanic Acid-Induced Kidney Injury in Rats. Van Veterinary Journal, 36(2), 139-145. https://doi.org/10.36483/vanvetj.1699352
AMA Aygörmez S, Dalkılınç E, Akaras N, Maraşlı Ş. Investigation of the Effects of Chrysin Against Amoxycillin-Clavulanic Acid-Induced Kidney Injury in Rats. Van Vet J. July 2025;36(2):139-145. doi:10.36483/vanvetj.1699352
Chicago Aygörmez, Serpil, Elif Dalkılınç, Nurhan Akaras, and Şaban Maraşlı. “Investigation of the Effects of Chrysin Against Amoxycillin-Clavulanic Acid-Induced Kidney Injury in Rats”. Van Veterinary Journal 36, no. 2 (July 2025): 139-45. https://doi.org/10.36483/vanvetj.1699352.
EndNote Aygörmez S, Dalkılınç E, Akaras N, Maraşlı Ş (July 1, 2025) Investigation of the Effects of Chrysin Against Amoxycillin-Clavulanic Acid-Induced Kidney Injury in Rats. Van Veterinary Journal 36 2 139–145.
IEEE S. Aygörmez, E. Dalkılınç, N. Akaras, and Ş. Maraşlı, “Investigation of the Effects of Chrysin Against Amoxycillin-Clavulanic Acid-Induced Kidney Injury in Rats”, Van Vet J, vol. 36, no. 2, pp. 139–145, 2025, doi: 10.36483/vanvetj.1699352.
ISNAD Aygörmez, Serpil et al. “Investigation of the Effects of Chrysin Against Amoxycillin-Clavulanic Acid-Induced Kidney Injury in Rats”. Van Veterinary Journal 36/2 (July2025), 139-145. https://doi.org/10.36483/vanvetj.1699352.
JAMA Aygörmez S, Dalkılınç E, Akaras N, Maraşlı Ş. Investigation of the Effects of Chrysin Against Amoxycillin-Clavulanic Acid-Induced Kidney Injury in Rats. Van Vet J. 2025;36:139–145.
MLA Aygörmez, Serpil et al. “Investigation of the Effects of Chrysin Against Amoxycillin-Clavulanic Acid-Induced Kidney Injury in Rats”. Van Veterinary Journal, vol. 36, no. 2, 2025, pp. 139-45, doi:10.36483/vanvetj.1699352.
Vancouver Aygörmez S, Dalkılınç E, Akaras N, Maraşlı Ş. Investigation of the Effects of Chrysin Against Amoxycillin-Clavulanic Acid-Induced Kidney Injury in Rats. Van Vet J. 2025;36(2):139-45.

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