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Resveratrol Attenuates Cisplatin-Induced Oxidative Stress: Combined Effects in MDA-MB-231 Breast Cancer Cells

Year 2025, Volume: 15 Issue: 4, 1268 - 1279
https://doi.org/10.21597/jist.1656328

Abstract

Cisplatin, widely preferred in cancer treatment, is known to inhibit neoplastic cell proliferation while simultaneously causing harmful effects in normal cells. Various research has indicated that cisplatin-induced cytotoxicity is closely correlated with an elevated generation of reactive oxygen species (ROS). Antioxidants are significant defense mechanisms in biological systems that neutralize damage induced by ROS, thereby protecting cells against the adverse effects of carcinogens, toxic radical reactions, and pharmacological agents. In this research, resveratrol, known for its numerous biological properties such as anti-inflammatory, antioxidant, and anti-tumor effects, has been used in combination with cisplatin. Specifically, the potential protective effects of resveratrol against cisplatin-induced oxidative stress damage in MDA-MB-231 breast cancer cells were evaluated. In this context, the levels of total oxidant status (TOS), total antioxidant status (TAS), oxidative stress index (OSI), malondialdehyde (MDA), superoxide dismutase (SOD), and glutathione (GSH) were determined both separately and in combination with cisplatin and resveratrol. When compared to the control group, TAS, SOD, and GSH levels were found to be lower in cells treated with cisplatin, while an increase in MDA and TOS levels was observed. However, when cisplatin and resveratrol were combined, there was a statistically significant increase in TAS, SOD, and GSH levels, and a decrease in TOS and MDA levels compared to the group treated with cisplatin alone. The findings indicate that cisplatin triggers oxidative stress in MDA-MB-231 cells by reducing the levels of antioxidant enzymes and increasing lipid peroxidation. Additionally, it was observed that this oxidative damage significantly decreased when combined treatment with resveratrol was applied.

References

  • Alarcón de la Lastra, C., & Villegas, I. (2007). Resveratrol as an antioxidant and pro-oxidant agent: Mechanisms and clinical implications. Biochemical Society Transactions, 35(5), 1156–1160
  • Al-Bader, M., & Kilarkaje, N. (2015). Effects of bleomycin, etoposide and cisplatin treatment on Leydig cell structure and transcription of steroidogenic enzymes in rat testis. European journal of pharmacology, 747, 150-159.
  • Al-Malki, A. L., & Sayed, A. A. R. (2014). Thymoquinone attenuates cisplatin-induced hepatotoxicity via nuclear factor kappa-β. BMC complementary and alternative medicine, 14, 1-8.
  • Aluyen, J. K., Ton, Q. N., Tran, T., Yang, A. E., Gottlieb, H. B., & Bellanger, R. A. (2012). Resveratrol: potential as anticancer agent. Journal of dietary supplements, 9(1), 45-56.
  • Aminuddin, A., Ng, P. Y., Leong, C.-O., & Chua, E. W. (2020). Mitochondrial DNA alterations may influence the cisplatin responsiveness of oral squamous cell carcinoma. Scientific reports, 10(1), 7885. Basu, A., & Krishnamurthy, S. (2010). Cellular responses to Cisplatin-induced DNA damage. Journal of nucleic acids, 2010.
  • Bunel, V., Tournay, Y., Baudoux, T., De Prez, E., Marchand, M., Mekinda, Z., . . . Nortier, J. L. (2017). Early detection of acute cisplatin nephrotoxicity: interest of urinary monitoring of proximal tubular biomarkers. Clinical kidney journal, 10(5), 639-647.
  • Cal, C., Garban, H., Jazirehi, A., Yeh, C., Mizutani, Y., & Bonavida, B. (2003). Resveratrol and cancer: chemoprevention, apoptosis, and chemoimmunosensitizing activities. Current Medicinal Chemistry-Anti-Cancer Agents, 3(2), 77-93.
  • Chen, H., Lei, P., Ji, H., Yang, Q., Peng, B., Ma, J., . . . Wu, W. (2023). Advances in Escherichia coli Nissle 1917 as a customizable drug delivery system for disease treatment and diagnosis strategies. Materials Today Bio, 18, 100543.
  • Ciftci, O., Cetin, A., Aydin, M., Kaya, K., & Oguz, F. (2014). Fish oil, contained in eicosapentaenoic acid and docosahexaenoic acid, attenuates testicular and spermatological damage induced by cisplatin in rats. Andrologia, 46(10), 1161-1168.
  • Crisafuli, F., Cesconetto, E., Ramos, E., & Rocha, M. (2012). DNA–cisplatin interaction studied with single molecule stretching experiments. Integrative biology, 4(5), 568-574.
  • Dasari, S., & Tchounwou, P. B. (2014). Cisplatin in cancer therapy: molecular mechanisms of action. European journal of pharmacology, 740, 364-378.
  • Dong, Y., Hou, Q., Sun, M., Sun, J., & Zhang, B. (2020). Targeted isolation of antioxidant Constituents from Plantago asiatica L. And in vitro activity assay. Molecules, 25(8), 1825.
  • El-Benhawy, S. A., Fahmy, E. I., Mahdy, S. M., Khedr, G. H., Sarhan, A. S., Nafady, M. H., . . . El Khadry, H. A. (2022). Assessment of thyroid gland hormones and ultrasonographic abnormalities in medical staff occupationally exposed to ionizing radiation. BMC Endocrine Disorders, 22(1), 287.
  • Erel, O. (2005). A new automated colorimetric method for measuring total oxidant status. Clinical biochemistry, 38(12), 1103-1111.
  • Finkel, T., & Holbrook, N. J. (2000). Oxidants, oxidative stress and the biology of ageing. nature, 408(6809), 239-247.
  • Fisusi, F. A., & Akala, E. O. (2019). Drug combinations in breast cancer therapy. Pharmaceutical nanotechnology, 7(1), 3-23.
  • Forman, H. J., Zhang, H., & Rinna, A. (2009). Glutathione: overview of its protective roles, measurement, and biosynthesis. Molecular aspects of medicine, 30(1-2), 1-12.
  • García, M. M. S., Acquier, A., Suarez, G., Gomez, N. V., Gorostizaga, A., Mendez, C. F., & Paz, C. (2012). Cisplatin inhibits testosterone synthesis by a mechanism that includes the action of reactive oxygen species (ROS) at the level of P450scc. Chemico-Biological Interactions, 199(3), 185-191.
  • Godbout, J. P., Pesavento, J., Hartman, M. E., Manson, S. R., & Freund, G. G. (2002). Methylglyoxal enhances cisplatin-induced cytotoxicity by activating protein kinase Cδ. Journal of Biological Chemistry, 277(4), 2554-2561.
  • Griesinger, F., Korol, E. E., Kayaniyil, S., Varol, N., Ebner, T., & Goring, S. M. (2019). Efficacy and safety of first-line carboplatin-versus cisplatin-based chemotherapy for non-small cell lung cancer: A meta-analysis. Lung Cancer, 135, 196-204.
  • Gutteridge, J. M., & Halliwell, B. (1989). 1 Iron toxicity and oxygen radicals. Bailliere's clinical haematology, 2(2), 195-256.
  • Guzel, M., Askar, T. K., Kaya, G., Atakisi, E., & Avci, G. E. (2008). Serum sialic acids, total antioxidant capacity, and adenosine deaminase activity in cattle with theileriosis and anaplasmosis. Bulletin of the Veterinary Institute in Puławy, 2(52).
  • Ha, E.-S., Sim, W.-Y., Lee, S.-K., Jeong, J.-S., Kim, J.-S., Baek, I.-h., . . . Kim, M.-S. (2019). Preparation and evaluation of resveratrol-loaded composite nanoparticles using a supercritical fluid technology for enhanced oral and skin delivery. Antioxidants, 8(11), 554.
  • Halliwell, B. (1989). Lipid peroxidation: a radical chain reaction. Free radicals in biology and medicine. Hamza, A. A., Heeba, G. H., Hassanin, S. O., Elwy, H. M., Bekhit, A. A., & Amin, A. (2023). Hibiscus-cisplatin combination treatment decreases liver toxicity in rats while increasing toxicity in lung cancer cells via oxidative stress-apoptosis pathway. Biomedicine & Pharmacotherapy, 165, 115148.
  • Hasanvand, A., Pirzadroozbahani, N., Ahmadizar, F., Kharazmkia, A., Mir, S., Baharvand, P. A., . . . Khorramabadi, R. M. (2018). Evaluation of the antioxidant effects of zolpidem in the rat model of cisplatin-induced nephrotoxicity. Journal of Renal Injury Prevention, 7(4), 235-239.
  • Hu, Y., Sun, B., Zhao, B., Mei, D., Gu, Q., & Tian, Z. (2018). Cisplatin-induced cardiotoxicity with midrange ejection fraction: A case report and review of the literature. Medicine, 97(52), e13807.
  • Ibrahim, M. A., Albahlol, I. A., Wani, F. A., Tammam, A. A.-E., Kelleni, M. T., Sayeed, M. U., . . . Mohamed, A. A. (2021). Resveratrol protects against cisplatin-induced ovarian and uterine toxicity in female rats by attenuating oxidative stress, inflammation and apoptosis. Chemico-Biological Interactions, 338, 109402.
  • Ighodaro, O., & Akinloye, O. (2018). First line defence antioxidants-superoxide dismutase (SOD), catalase (CAT) and glutathione peroxidase (GPX): Their fundamental role in the entire antioxidant defence grid. Alexandria journal of medicine, 54(4), 287-293.
  • Ježek, P., & Hlavatá, L. (2005). Mitochondria in homeostasis of reactive oxygen species in cell, tissues, and organism. The international journal of biochemistry & cell biology, 37(12), 2478-2503.
  • Kang, J. S., Han, M. H., Kim, G.-Y., Kim, C. M., Kim, B. W., Hwang, H. J., & Choi, Y. H. (2014). Nrf2-mediated HO-1 induction contributes to antioxidant capacity of a Schisandrae Fructus ethanol extract in C2C12 myoblasts. Nutrients, 6(12), 5667-5678.
  • Kashyap, D., Pal, D., Sharma, R., Garg, V. K., Goel, N., Koundal, D., . . . Belay, A. (2022). Global increase in breast cancer incidence: risk factors and preventive measures. BioMed research international, 2022. Katiyar, S. K. (2006). Oxidative stress and photocarcinogenesis: Strategies for prevention. In Oxidative stress, disease and cancer (pp. 933-964): World Scientific.
  • Kleih, M., Böpple, K., Dong, M., Gaißler, A., Heine, S., Olayioye, M. A., Aulitzky, W. E., & Essmann, F. (2019). Direct impact of cisplatin on mitochondria induces ROS production that dictates cell fate of ovarian cancer cells. Cell Death and Disease, 10, 851
  • Ko, J.-H., Sethi, G., Um, J.-Y., Shanmugam, M. K., Arfuso, F., Kumar, A. P., . . . Ahn, K. S. (2017). The role of resveratrol in cancer therapy. International journal of molecular sciences, 18(12), 2589. Kumar, S., & Pandey, A. K. (2013). Chemistry and biological activities of flavonoids: an overview. The scientific world journal, 2013.
  • Lee, G. Y., & Han, S. N. (2018). The role of vitamin E in immunity. Nutrients, 10(11), 1614.
  • Leonard, S. S., Xia, C., Jiang, B.-H., Stinefelt, B., Klandorf, H., Harris, G. K., & Shi, X. (2003). Resveratrol scavenges reactive oxygen species and effects radical-induced cellular responses. Biochemical and biophysical research communications, 309(4), 1017-1026.
  • Madhu, P., Reddy, K. P., & Reddy, P. S. (2016). Role of melatonin in mitigating chemotherapy-induced testicular dysfunction in Wistar rats. Drug and chemical toxicology, 39(2), 137-146.
  • Okafor, I. A., & Gbotolorun, S. C. (2018). Resveratrol prevents cisplatin-induced lipid peroxidation in the non-gravid uterus of Sprague-Dawley rats. Middle East Fertility Society Journal, 23(3), 205-210.
  • Özdemi̇r, F., Sever, A., Keçeci̇, Y. Ö., & Incesu, Z. (2021). Resveratrol increases the sensitivity of breast cancer MDA-MB-231 cell line to cisplatin by regulating intrinsic apoptosis. Iranian Journal of Basic Medical Sciences, 24(1), 66.
  • Palumbo, M. O., Kavan, P., Miller Jr, W. H., Panasci, L., Assouline, S., Johnson, N., . . . Jagoe, R. T. (2013). Systemic cancer therapy: achievements and challenges that lie ahead. Frontiers in pharmacology, 4, 57. Richard, T., Pawlus, A. D., Iglésias, M. L., Pedrot, E., Waffo‐Teguo, P., Mérillon, J. M., & Monti, J. P. (2011). Neuroprotective properties of resveratrol and derivatives. Annals of the New York Academy of Sciences, 1215(1), 103-108.
  • Rodríguez-Enríquez, S., Pacheco-Velázquez, S. C., Marín-Hernández, Á., Gallardo-Pérez, J. C., et al. (2019). Resveratrol inhibits cancer cell proliferation by impairing oxidative phosphorylation and inducing oxidative stress. Toxicology and Applied Pharmacology, 370, 65–77.
  • Salem, E. A., Salem, N. A., Maarouf, A. M., Serefoglu, E. C., & Hellstrom, W. J. (2012). Selenium and lycopene attenuate cisplatin-induced testicular toxicity associated with oxidative stress in Wistar rats. Urology, 79(5), 1184. e1181-1184. e1186.
  • Sessa, M., Balestrieri, M. L., Ferrari, G., Servillo, L., Castaldo, D., D’Onofrio, N., . . . Tsao, R. (2014). Bioavailability of encapsulated resveratrol into nanoemulsion-based delivery systems. Food chemistry, 147, 42-50. She, Q.-B., Bode, A. M., Ma, W.-Y., Chen, N.-Y., & Dong, Z. (2001). Resveratrol-induced activation of p53 and apoptosis is mediated by extracellular-signal-regulated protein kinases and p38 kinase. Cancer research, 61(4), 1604-1610.
  • Shou, D., Wen, L., Song, Z., Yin, J., Sun, Q., & Gong, W. (2016). Suppressive role of myeloid-derived suppressor cells (MDSCs) in the microenvironment of breast cancer and targeted immunotherapies. Oncotarget, 7(39), 64505.
  • Siegel, R. L., Miller, K. D., & Jemal, A. (2018). Cancer statistics, 2018. CA: a cancer journal for clinicians, 68(1), 7-30. Siegel, R. L., Miller, K. D., Wagle, N. S., & Jemal, A. (2023). Cancer statistics, 2023. Ca Cancer J Clin, 73(1), 17-48. Silici, S., Ekmekcioglu, O., Eraslan, G., & Demirtas, A. (2009). Antioxidative effect of royal jelly in cisplatin-induced testes damage. Urology, 74(3), 545-551.
  • Singh, I., Goyal, Y., & Ranawat, P. (2017). Potential chemoprotective role of resveratrol against cisplatin induced testicular damage in mice. Chemico-Biological Interactions, 273, 200-211.
  • Tohamy, A. A., Abdella, E. M., Ahmed, R. R., & Ahmed, Y. K. (2014). Assessment of anti-mutagenic, anti-histopathologic and antioxidant capacities of Egyptian bee pollen and propolis extracts. Cytotechnology, 66, 283-297.
  • Türk, G. (2013). Kemoterapötiklerin erkek üreme sistemi üzerindeki yan etkileri ve koruyucu stratejiler. Marmara Pharmaceutical Journal, 17(2), 73-92.
  • Valko, M., Rhodes, C., Moncol, J., Izakovic, M., & Mazur, M. (2006). Free radicals, metals and antioxidants in oxidative stress-induced cancer. Chemico-Biological Interactions, 160(1), 1-40.
  • Weigelt, B., Geyer, F. C., & Reis-Filho, J. S. (2010). Histological types of breast cancer: how special are they? Molecular oncology, 4(3), 192-208.
  • Weijl, N., Hopman, G., Wipkink-Bakker, A., Lentjes, E., Berger, H., Cleton, F., & Osanto, S. (1998). Cisplatin combination chemotherapy induces a fall in plasma antioxidants of cancer patients. Annals of Oncology, 9(12), 1331-1337.
  • Weydert, C. J., & Cullen, J. J. (2010). Measurement of superoxide dismutase, catalase and glutathione peroxidase in cultured cells and tissue. Nature protocols, 5(1), 51-66.
  • Yu, W., Chen, Y., Dubrulle, J., Stossi, F., Putluri, V., Sreekumar, A., . . . Sandulache, V. C. (2018). Cisplatin generates oxidative stress which is accompanied by rapid shifts in central carbon metabolism. Scientific reports, 8(1), 4306.
  • Zhan, Y., Chen, Y., Liu, R., Zhang, H., & Zhang, Y. (2014). Potentiation of paclitaxel activity by curcumin in human breast cancer cell by modulating apoptosis and inhibiting EGFR signaling. Archives of pharmacal research, 37, 1086-1095.

Year 2025, Volume: 15 Issue: 4, 1268 - 1279
https://doi.org/10.21597/jist.1656328

Abstract

References

  • Alarcón de la Lastra, C., & Villegas, I. (2007). Resveratrol as an antioxidant and pro-oxidant agent: Mechanisms and clinical implications. Biochemical Society Transactions, 35(5), 1156–1160
  • Al-Bader, M., & Kilarkaje, N. (2015). Effects of bleomycin, etoposide and cisplatin treatment on Leydig cell structure and transcription of steroidogenic enzymes in rat testis. European journal of pharmacology, 747, 150-159.
  • Al-Malki, A. L., & Sayed, A. A. R. (2014). Thymoquinone attenuates cisplatin-induced hepatotoxicity via nuclear factor kappa-β. BMC complementary and alternative medicine, 14, 1-8.
  • Aluyen, J. K., Ton, Q. N., Tran, T., Yang, A. E., Gottlieb, H. B., & Bellanger, R. A. (2012). Resveratrol: potential as anticancer agent. Journal of dietary supplements, 9(1), 45-56.
  • Aminuddin, A., Ng, P. Y., Leong, C.-O., & Chua, E. W. (2020). Mitochondrial DNA alterations may influence the cisplatin responsiveness of oral squamous cell carcinoma. Scientific reports, 10(1), 7885. Basu, A., & Krishnamurthy, S. (2010). Cellular responses to Cisplatin-induced DNA damage. Journal of nucleic acids, 2010.
  • Bunel, V., Tournay, Y., Baudoux, T., De Prez, E., Marchand, M., Mekinda, Z., . . . Nortier, J. L. (2017). Early detection of acute cisplatin nephrotoxicity: interest of urinary monitoring of proximal tubular biomarkers. Clinical kidney journal, 10(5), 639-647.
  • Cal, C., Garban, H., Jazirehi, A., Yeh, C., Mizutani, Y., & Bonavida, B. (2003). Resveratrol and cancer: chemoprevention, apoptosis, and chemoimmunosensitizing activities. Current Medicinal Chemistry-Anti-Cancer Agents, 3(2), 77-93.
  • Chen, H., Lei, P., Ji, H., Yang, Q., Peng, B., Ma, J., . . . Wu, W. (2023). Advances in Escherichia coli Nissle 1917 as a customizable drug delivery system for disease treatment and diagnosis strategies. Materials Today Bio, 18, 100543.
  • Ciftci, O., Cetin, A., Aydin, M., Kaya, K., & Oguz, F. (2014). Fish oil, contained in eicosapentaenoic acid and docosahexaenoic acid, attenuates testicular and spermatological damage induced by cisplatin in rats. Andrologia, 46(10), 1161-1168.
  • Crisafuli, F., Cesconetto, E., Ramos, E., & Rocha, M. (2012). DNA–cisplatin interaction studied with single molecule stretching experiments. Integrative biology, 4(5), 568-574.
  • Dasari, S., & Tchounwou, P. B. (2014). Cisplatin in cancer therapy: molecular mechanisms of action. European journal of pharmacology, 740, 364-378.
  • Dong, Y., Hou, Q., Sun, M., Sun, J., & Zhang, B. (2020). Targeted isolation of antioxidant Constituents from Plantago asiatica L. And in vitro activity assay. Molecules, 25(8), 1825.
  • El-Benhawy, S. A., Fahmy, E. I., Mahdy, S. M., Khedr, G. H., Sarhan, A. S., Nafady, M. H., . . . El Khadry, H. A. (2022). Assessment of thyroid gland hormones and ultrasonographic abnormalities in medical staff occupationally exposed to ionizing radiation. BMC Endocrine Disorders, 22(1), 287.
  • Erel, O. (2005). A new automated colorimetric method for measuring total oxidant status. Clinical biochemistry, 38(12), 1103-1111.
  • Finkel, T., & Holbrook, N. J. (2000). Oxidants, oxidative stress and the biology of ageing. nature, 408(6809), 239-247.
  • Fisusi, F. A., & Akala, E. O. (2019). Drug combinations in breast cancer therapy. Pharmaceutical nanotechnology, 7(1), 3-23.
  • Forman, H. J., Zhang, H., & Rinna, A. (2009). Glutathione: overview of its protective roles, measurement, and biosynthesis. Molecular aspects of medicine, 30(1-2), 1-12.
  • García, M. M. S., Acquier, A., Suarez, G., Gomez, N. V., Gorostizaga, A., Mendez, C. F., & Paz, C. (2012). Cisplatin inhibits testosterone synthesis by a mechanism that includes the action of reactive oxygen species (ROS) at the level of P450scc. Chemico-Biological Interactions, 199(3), 185-191.
  • Godbout, J. P., Pesavento, J., Hartman, M. E., Manson, S. R., & Freund, G. G. (2002). Methylglyoxal enhances cisplatin-induced cytotoxicity by activating protein kinase Cδ. Journal of Biological Chemistry, 277(4), 2554-2561.
  • Griesinger, F., Korol, E. E., Kayaniyil, S., Varol, N., Ebner, T., & Goring, S. M. (2019). Efficacy and safety of first-line carboplatin-versus cisplatin-based chemotherapy for non-small cell lung cancer: A meta-analysis. Lung Cancer, 135, 196-204.
  • Gutteridge, J. M., & Halliwell, B. (1989). 1 Iron toxicity and oxygen radicals. Bailliere's clinical haematology, 2(2), 195-256.
  • Guzel, M., Askar, T. K., Kaya, G., Atakisi, E., & Avci, G. E. (2008). Serum sialic acids, total antioxidant capacity, and adenosine deaminase activity in cattle with theileriosis and anaplasmosis. Bulletin of the Veterinary Institute in Puławy, 2(52).
  • Ha, E.-S., Sim, W.-Y., Lee, S.-K., Jeong, J.-S., Kim, J.-S., Baek, I.-h., . . . Kim, M.-S. (2019). Preparation and evaluation of resveratrol-loaded composite nanoparticles using a supercritical fluid technology for enhanced oral and skin delivery. Antioxidants, 8(11), 554.
  • Halliwell, B. (1989). Lipid peroxidation: a radical chain reaction. Free radicals in biology and medicine. Hamza, A. A., Heeba, G. H., Hassanin, S. O., Elwy, H. M., Bekhit, A. A., & Amin, A. (2023). Hibiscus-cisplatin combination treatment decreases liver toxicity in rats while increasing toxicity in lung cancer cells via oxidative stress-apoptosis pathway. Biomedicine & Pharmacotherapy, 165, 115148.
  • Hasanvand, A., Pirzadroozbahani, N., Ahmadizar, F., Kharazmkia, A., Mir, S., Baharvand, P. A., . . . Khorramabadi, R. M. (2018). Evaluation of the antioxidant effects of zolpidem in the rat model of cisplatin-induced nephrotoxicity. Journal of Renal Injury Prevention, 7(4), 235-239.
  • Hu, Y., Sun, B., Zhao, B., Mei, D., Gu, Q., & Tian, Z. (2018). Cisplatin-induced cardiotoxicity with midrange ejection fraction: A case report and review of the literature. Medicine, 97(52), e13807.
  • Ibrahim, M. A., Albahlol, I. A., Wani, F. A., Tammam, A. A.-E., Kelleni, M. T., Sayeed, M. U., . . . Mohamed, A. A. (2021). Resveratrol protects against cisplatin-induced ovarian and uterine toxicity in female rats by attenuating oxidative stress, inflammation and apoptosis. Chemico-Biological Interactions, 338, 109402.
  • Ighodaro, O., & Akinloye, O. (2018). First line defence antioxidants-superoxide dismutase (SOD), catalase (CAT) and glutathione peroxidase (GPX): Their fundamental role in the entire antioxidant defence grid. Alexandria journal of medicine, 54(4), 287-293.
  • Ježek, P., & Hlavatá, L. (2005). Mitochondria in homeostasis of reactive oxygen species in cell, tissues, and organism. The international journal of biochemistry & cell biology, 37(12), 2478-2503.
  • Kang, J. S., Han, M. H., Kim, G.-Y., Kim, C. M., Kim, B. W., Hwang, H. J., & Choi, Y. H. (2014). Nrf2-mediated HO-1 induction contributes to antioxidant capacity of a Schisandrae Fructus ethanol extract in C2C12 myoblasts. Nutrients, 6(12), 5667-5678.
  • Kashyap, D., Pal, D., Sharma, R., Garg, V. K., Goel, N., Koundal, D., . . . Belay, A. (2022). Global increase in breast cancer incidence: risk factors and preventive measures. BioMed research international, 2022. Katiyar, S. K. (2006). Oxidative stress and photocarcinogenesis: Strategies for prevention. In Oxidative stress, disease and cancer (pp. 933-964): World Scientific.
  • Kleih, M., Böpple, K., Dong, M., Gaißler, A., Heine, S., Olayioye, M. A., Aulitzky, W. E., & Essmann, F. (2019). Direct impact of cisplatin on mitochondria induces ROS production that dictates cell fate of ovarian cancer cells. Cell Death and Disease, 10, 851
  • Ko, J.-H., Sethi, G., Um, J.-Y., Shanmugam, M. K., Arfuso, F., Kumar, A. P., . . . Ahn, K. S. (2017). The role of resveratrol in cancer therapy. International journal of molecular sciences, 18(12), 2589. Kumar, S., & Pandey, A. K. (2013). Chemistry and biological activities of flavonoids: an overview. The scientific world journal, 2013.
  • Lee, G. Y., & Han, S. N. (2018). The role of vitamin E in immunity. Nutrients, 10(11), 1614.
  • Leonard, S. S., Xia, C., Jiang, B.-H., Stinefelt, B., Klandorf, H., Harris, G. K., & Shi, X. (2003). Resveratrol scavenges reactive oxygen species and effects radical-induced cellular responses. Biochemical and biophysical research communications, 309(4), 1017-1026.
  • Madhu, P., Reddy, K. P., & Reddy, P. S. (2016). Role of melatonin in mitigating chemotherapy-induced testicular dysfunction in Wistar rats. Drug and chemical toxicology, 39(2), 137-146.
  • Okafor, I. A., & Gbotolorun, S. C. (2018). Resveratrol prevents cisplatin-induced lipid peroxidation in the non-gravid uterus of Sprague-Dawley rats. Middle East Fertility Society Journal, 23(3), 205-210.
  • Özdemi̇r, F., Sever, A., Keçeci̇, Y. Ö., & Incesu, Z. (2021). Resveratrol increases the sensitivity of breast cancer MDA-MB-231 cell line to cisplatin by regulating intrinsic apoptosis. Iranian Journal of Basic Medical Sciences, 24(1), 66.
  • Palumbo, M. O., Kavan, P., Miller Jr, W. H., Panasci, L., Assouline, S., Johnson, N., . . . Jagoe, R. T. (2013). Systemic cancer therapy: achievements and challenges that lie ahead. Frontiers in pharmacology, 4, 57. Richard, T., Pawlus, A. D., Iglésias, M. L., Pedrot, E., Waffo‐Teguo, P., Mérillon, J. M., & Monti, J. P. (2011). Neuroprotective properties of resveratrol and derivatives. Annals of the New York Academy of Sciences, 1215(1), 103-108.
  • Rodríguez-Enríquez, S., Pacheco-Velázquez, S. C., Marín-Hernández, Á., Gallardo-Pérez, J. C., et al. (2019). Resveratrol inhibits cancer cell proliferation by impairing oxidative phosphorylation and inducing oxidative stress. Toxicology and Applied Pharmacology, 370, 65–77.
  • Salem, E. A., Salem, N. A., Maarouf, A. M., Serefoglu, E. C., & Hellstrom, W. J. (2012). Selenium and lycopene attenuate cisplatin-induced testicular toxicity associated with oxidative stress in Wistar rats. Urology, 79(5), 1184. e1181-1184. e1186.
  • Sessa, M., Balestrieri, M. L., Ferrari, G., Servillo, L., Castaldo, D., D’Onofrio, N., . . . Tsao, R. (2014). Bioavailability of encapsulated resveratrol into nanoemulsion-based delivery systems. Food chemistry, 147, 42-50. She, Q.-B., Bode, A. M., Ma, W.-Y., Chen, N.-Y., & Dong, Z. (2001). Resveratrol-induced activation of p53 and apoptosis is mediated by extracellular-signal-regulated protein kinases and p38 kinase. Cancer research, 61(4), 1604-1610.
  • Shou, D., Wen, L., Song, Z., Yin, J., Sun, Q., & Gong, W. (2016). Suppressive role of myeloid-derived suppressor cells (MDSCs) in the microenvironment of breast cancer and targeted immunotherapies. Oncotarget, 7(39), 64505.
  • Siegel, R. L., Miller, K. D., & Jemal, A. (2018). Cancer statistics, 2018. CA: a cancer journal for clinicians, 68(1), 7-30. Siegel, R. L., Miller, K. D., Wagle, N. S., & Jemal, A. (2023). Cancer statistics, 2023. Ca Cancer J Clin, 73(1), 17-48. Silici, S., Ekmekcioglu, O., Eraslan, G., & Demirtas, A. (2009). Antioxidative effect of royal jelly in cisplatin-induced testes damage. Urology, 74(3), 545-551.
  • Singh, I., Goyal, Y., & Ranawat, P. (2017). Potential chemoprotective role of resveratrol against cisplatin induced testicular damage in mice. Chemico-Biological Interactions, 273, 200-211.
  • Tohamy, A. A., Abdella, E. M., Ahmed, R. R., & Ahmed, Y. K. (2014). Assessment of anti-mutagenic, anti-histopathologic and antioxidant capacities of Egyptian bee pollen and propolis extracts. Cytotechnology, 66, 283-297.
  • Türk, G. (2013). Kemoterapötiklerin erkek üreme sistemi üzerindeki yan etkileri ve koruyucu stratejiler. Marmara Pharmaceutical Journal, 17(2), 73-92.
  • Valko, M., Rhodes, C., Moncol, J., Izakovic, M., & Mazur, M. (2006). Free radicals, metals and antioxidants in oxidative stress-induced cancer. Chemico-Biological Interactions, 160(1), 1-40.
  • Weigelt, B., Geyer, F. C., & Reis-Filho, J. S. (2010). Histological types of breast cancer: how special are they? Molecular oncology, 4(3), 192-208.
  • Weijl, N., Hopman, G., Wipkink-Bakker, A., Lentjes, E., Berger, H., Cleton, F., & Osanto, S. (1998). Cisplatin combination chemotherapy induces a fall in plasma antioxidants of cancer patients. Annals of Oncology, 9(12), 1331-1337.
  • Weydert, C. J., & Cullen, J. J. (2010). Measurement of superoxide dismutase, catalase and glutathione peroxidase in cultured cells and tissue. Nature protocols, 5(1), 51-66.
  • Yu, W., Chen, Y., Dubrulle, J., Stossi, F., Putluri, V., Sreekumar, A., . . . Sandulache, V. C. (2018). Cisplatin generates oxidative stress which is accompanied by rapid shifts in central carbon metabolism. Scientific reports, 8(1), 4306.
  • Zhan, Y., Chen, Y., Liu, R., Zhang, H., & Zhang, Y. (2014). Potentiation of paclitaxel activity by curcumin in human breast cancer cell by modulating apoptosis and inhibiting EGFR signaling. Archives of pharmacal research, 37, 1086-1095.
There are 53 citations in total.

Details

Primary Language English
Subjects Biochemistry and Cell Biology (Other)
Journal Section Research Article
Authors

Yüksel Öğünç Keçeci 0000-0002-8424-5157

Filiz Özdemir 0000-0002-3359-4496

Early Pub Date November 27, 2025
Publication Date November 28, 2025
Submission Date March 12, 2025
Acceptance Date May 16, 2025
Published in Issue Year 2025 Volume: 15 Issue: 4

Cite

APA Öğünç Keçeci, Y., & Özdemir, F. (2025). Resveratrol Attenuates Cisplatin-Induced Oxidative Stress: Combined Effects in MDA-MB-231 Breast Cancer Cells. Journal of the Institute of Science and Technology, 15(4), 1268-1279. https://doi.org/10.21597/jist.1656328
AMA Öğünç Keçeci Y, Özdemir F. Resveratrol Attenuates Cisplatin-Induced Oxidative Stress: Combined Effects in MDA-MB-231 Breast Cancer Cells. J. Inst. Sci. and Tech. November 2025;15(4):1268-1279. doi:10.21597/jist.1656328
Chicago Öğünç Keçeci, Yüksel, and Filiz Özdemir. “Resveratrol Attenuates Cisplatin-Induced Oxidative Stress: Combined Effects in MDA-MB-231 Breast Cancer Cells”. Journal of the Institute of Science and Technology 15, no. 4 (November 2025): 1268-79. https://doi.org/10.21597/jist.1656328.
EndNote Öğünç Keçeci Y, Özdemir F (November 1, 2025) Resveratrol Attenuates Cisplatin-Induced Oxidative Stress: Combined Effects in MDA-MB-231 Breast Cancer Cells. Journal of the Institute of Science and Technology 15 4 1268–1279.
IEEE Y. Öğünç Keçeci and F. Özdemir, “Resveratrol Attenuates Cisplatin-Induced Oxidative Stress: Combined Effects in MDA-MB-231 Breast Cancer Cells”, J. Inst. Sci. and Tech., vol. 15, no. 4, pp. 1268–1279, 2025, doi: 10.21597/jist.1656328.
ISNAD Öğünç Keçeci, Yüksel - Özdemir, Filiz. “Resveratrol Attenuates Cisplatin-Induced Oxidative Stress: Combined Effects in MDA-MB-231 Breast Cancer Cells”. Journal of the Institute of Science and Technology 15/4 (November2025), 1268-1279. https://doi.org/10.21597/jist.1656328.
JAMA Öğünç Keçeci Y, Özdemir F. Resveratrol Attenuates Cisplatin-Induced Oxidative Stress: Combined Effects in MDA-MB-231 Breast Cancer Cells. J. Inst. Sci. and Tech. 2025;15:1268–1279.
MLA Öğünç Keçeci, Yüksel and Filiz Özdemir. “Resveratrol Attenuates Cisplatin-Induced Oxidative Stress: Combined Effects in MDA-MB-231 Breast Cancer Cells”. Journal of the Institute of Science and Technology, vol. 15, no. 4, 2025, pp. 1268-79, doi:10.21597/jist.1656328.
Vancouver Öğünç Keçeci Y, Özdemir F. Resveratrol Attenuates Cisplatin-Induced Oxidative Stress: Combined Effects in MDA-MB-231 Breast Cancer Cells. J. Inst. Sci. and Tech. 2025;15(4):1268-79.