Original Article
Evaluation of Terminalia arjuna in Comparison to Taurine against Experimental Hepatotoxicity due to Cisplatin in Rats
Year: 2021 | Month: June | Volume 11 | Issue 3
Abdellatief, S.A., Galal, A.A., Farouk, S.M. and Abdel- Daim, M.M. 2017. Ameliorative effect of parsley oil on cisplatin-induced hepato-cardiotoxicity: a biochemical, histopathological, and immunohistochemical study. Biomed. Pharmacother., 86: 482-491.
View at Google ScholarAmalraj, A. and Gopi, S. 2017. Medicinal properties of Terminalia arjuna (Roxb.) Wight & Arn.: a review. J. Tradit. Complement. Med., 7(1): 65-78.
View at Google ScholarBentli, R., Parlakpinar, H., Polat, A., Samdanci, E., Sarihan, M.E. and Sagir, M. 2013. Molsidomine prevents cisplatininduced hepatotoxicity. Arch. Med. Res., 44(7): 521-528.
View at Google ScholarCure, M.C., Cure, E., Kalkan, Y., Kirba?, A., Tumkaya, L., Yilmaz, A. and Yuce, S. 2016. Infliximab modulates cisplatininduced hepatotoxicity in rats. Balkan Med. J., 33(5): 504.
View at Google ScholarDasari, S. and Tchounwou, P.B. 2014. Cisplatin in cancer therapy: molecular mechanisms of action. Eur. J. Pharmacol., 740: 364-378.
View at Google ScholarDe Luca, A., Parker, L.J., Ang, W.H., Rodolfo, C., Gabbarini, V., Hancock, N.C. and Dyson, P.J. 2019. A structure-based mechanism of cisplatin resistance mediated by glutathione transferase P1-1. Proc. Natl. Acad. Sci., 116(28): 13943- 13951.
View at Google ScholarFlorea, A.M. and Busselberg, D. 2011. Cisplatin as an antitumor drug: cellular mechanisms of activity, drug resistance and induced side effects. Cancer., 3(1): 1351-1371.
View at Google ScholarGinguay, A., De Bandt, J.P. and Cynober, L. 2016. Indications and contraindications for infusing specific amino acids (leucine, glutamine, arginine, citrulline, and taurine) in critical illness. Curr. Opin. Clin. Nutr. Metab. Care., 19 (2): 161-169.
View at Google ScholarHorinouchi, H., Kubota, K., Itani, H., Taniyama, T.K., Nakamichi, S., Wakui, H. and Tamura, T. 2013. Short hydration in chemotherapy containing cisplatin (≥ 75 mg/ m2) for patients with lung cancer: a prospective study. Jpn. J. Clin. Oncol., 43(11): 1105-1109.
View at Google ScholarJadon, A.S., Bhadauriya, P. and Sharma, M. 2019. An integrative review of Cisplatin: the first metal Anti-Tumor drug. J. Drug Deliv. Ther., 9(3): 673-677.
View at Google ScholarJamdade, V.S., Mundhe, N.A., Kumar, P., Tadla, V. and Lahkar, M. 2016. Raloxifene inhibits NF-kB pathway and potentiates anti-tumour activity of cisplatin with simultaneous reduction in its nephrotoxictiy. Pathol. Oncol. Res., 22(1): 145-153.
View at Google ScholarKarale, S. and Kamath, J. V. 2017. Effect of daidzein on cisplatininduced hematotoxicity and hepatotoxicity in experimental rats. Indian J. Pharmacol., 49(1): 49.
View at Google ScholarKarimi, S., Hosseinimehr, S.J., Mohammadi, H.R., Khalatbary, A.R. and Amiri, F.T. 2018. Zatariamultiflora ameliorates cisplatin-induced testicular damage via suppression of oxidative stress and apoptosis in a mice model. Iran. J. Basic Med. Sci., 21(6): 607.
View at Google ScholarKhan, M.S.A. and Ahmad, I. 2019. Herbal medicine: Current trends and future aspects. New look into Phytomedicine, Advancements in herbal products as novel drug leads, pp. 3-13. India: Academic Press.
View at Google ScholarKhan, R., Khan, A.Q., Qamar, W., Lateef, A., Ali, F., Rehman, M.U. and Sultana, S. 2012. Chrysin abrogates cisplatininduced oxidative stress, p53 expression, goblet cell disintegration and apoptotic responses in the jejunum of Wistar rats. Br. J. Nutr., 108(9): 1574-1585.
View at Google ScholarManohar, S. and Leung, N. 2018. Cisplatin nephrotoxicity: a review of the literature. J. Nephrol., 31 (1): 15-25.
View at Google ScholarOkon, E., Luszczki, J.J., Kukula-Koch, W., Halasa, M., Jarzab, A., Khurelbat, D. and Wawruszak, A. 2020. Synergistic or additive pharmacological interactions between magnoflorine and cisplatin in human cancer cells of different histological origin. Int. J. Mol. Sci., 21(8): 2848.
View at Google ScholarPaarakh, P. M. 2010. Terminalia arjuna (Roxb.) Wt. and Arn.: a review. Int. J. Pharmacol., 6(5): 515-534.
View at Google ScholarPinar, N., Cakirca, G., Hakverdi, S. and Kaplan, M. 2020. Protective effect of alpha lipoic acid on cisplatin induced hepatotoxicity in rats. Biotech. Histochem., 95(3): 219-224.
View at Google ScholarRaj, S., Singh, H., Trivedi, R. and Soni, V. 2020. Biogenic synthesis of AgNPs employing Terminalia arjuna leaf extract and its efficacy towards catalytic degradation of organic dyes. Sci. Rep., 10(1): 1-10.
View at Google ScholarRamya, B., Anjaneyulu, Y., Reddy, A. G., Madhuri, D., Lakshman, M. and Shivakumar, P. 2013. Protective role of turmeric on histological, ultrastructural and sero-biochemical changes in cisplatin-induced nephrotoxicity in female rats. Vet. World, 6(11): 865.
View at Google ScholarSahu, B.D., Kalvala, A.K., Koneru, M., Kumar, J.M., Kuncha, M., Rachamalla, S.S. and Sistla, R. 2014. Ameliorative effect of fisetin on cisplatin-induced nephrotoxicity in rats via modulation of NF-κB activation and antioxidant defence. PLoS One., 9(9): e105070.
View at Google ScholarSchaffer, S. and Kim, H. W. 2018. Effects and mechanisms of taurine as a therapeutic agent. Biomol. Ther., 26(3): 225.
View at Google ScholarSherif, I.O. 2015. Amelioration of cisplatin-induced nephrotoxicity in rats by triterpenoidsaponin of Terminalia arjuna. Clin. Exp. Nephrol., 19(4): 591-597.
View at Google ScholarUn, H., Ugan, R.A., Kose, D., Bayir, Y., Cadirci, E., Selli, J. and Halici, Z. 2020. A novel effect of Aprepitant: Protection for cisplatin-induced nephrotoxicity and hepatotoxicity. Eur. J. Pharmacol.,173168.
View at Google ScholarWaseem, M., Pandey, P., Tomar, B., Raisuddin, S. and Parvez, S. 2014. Ameliorative action of curcumin in cisplatin-mediated hepatotoxicity: an in vivo study in Wistar rats. Arch. Med. Res., 45(6): 462-468.
View at Google ScholarYousef, M. I. andHussien, H.M. 2015. Cisplatin-induced renal toxicity via tumor necrosis factor-α, interleukin 6, tumor suppressor P53, DNA damage, xanthine oxidase, histological changes, oxidative stress and nitric oxide in rats: protective effect of ginseng. Food Chem. Toxicol., 78: 17-25.
View at Google ScholarZhu, H., Luo, H., Zhang, W., Shen, Z., Hu, X. and Zhu, X. 2016. Molecular mechanisms of cisplatin resistance in cervical cancer. Drug Des. Devel. Ther., 10: 1885.
View at Google Scholar



