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      Ginsenoside Rg5 Ameliorates Cisplatin-Induced Nephrotoxicity in Mice through Inhibition of Inflammation, Oxidative Stress, and Apoptosis

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          Abstract

          Although cisplatin is an effective anti-cancer agent that is widely used for treating various types of malignant solid tumors, the nephrotoxicity induced by cisplatin severely limits its clinical application. The present study was designed to explore the potential protective effect of ginsenoside Rg5, a rare ginsenoside generated during steaming ginseng, on cisplatin-induced nephrotoxicity in a mouse experimental model. The possible mechanisms underlying this nephroprotective effect were also investigated for the first time. Rg5 was given at doses of 10 and 20 mg/kg for 10 consecutive days. On Day 7, a single nephrotoxic dose of cisplatin (25 mg/kg) was injected to mice. Cisplatin administration resulted in renal dysfunction as evidenced by increase in serum creatinine (CRE) and blood urea nitrogen (BUN) levels. In addition, cisplatin increased the level of malondialdehyde (MDA) and 4-hydroxynonenal (4-HNE), the makers of lipid peroxidation, and depleted glutathione (GSH) content and superoxide dismutase (SOD) activity in renal tissues. These effects were associated with the significantly increased levels of cytochrome P450 E1 (CYP2E1), 4-hydroxynonenal (4-HNE), tumor necrosis factor (TNF)-α, interleukin (IL)-1β, nuclear factor-kappa B (NF-κB) p65, and cyclooxygenase-2 (COX-2) in renal tissues. However, pretreatment with ginsenoside Rg5 significantly attenuated the renal dysfunction, oxidative stress and inflammation response induced by cisplatin. Furthermore, ginsenoside Rg5 supplementation inhibited activation of apoptotic pathways through increasing Bcl-2 and decreasing Bax expression levels. Histopathological examination further confirmed the nephroprotective effect of Rg5. Collectively, these results clearly suggest that Rg5-mediated alleviation of cisplatin-induced nephrotoxicity may be related to its anti-oxidant, anti-apoptotic and anti-inflammatory effects.

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          Most cited references45

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          Steaming of ginseng at high temperature enhances biological activity.

          The present study was performed to evaluate the effect of steaming ginseng at a temperature over 100 degrees C on its chemical constituents and biological activities. Raw ginseng was steamed at 100, 110, and 120 degrees C for 2 h using an autoclave. The ginseng steamed at 120 degrees C was more potent in its ability to induce endothelium-dependent relaxation. Steaming the raw ginseng at 120 degrees C also remarkably increased the radical-scavenging activity. Ginsenosides F(4), Rg(3), and Rg(5), which were not present in raw ginseng, were produced after steaming. Ginsenosides Rg(3) and Rg(5) were the most abundant ginsenosides in the ginseng steamed at 120 degrees C, accounting for 39% and 19% of all ginsenosides, respectively.
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            Nefrotoxicidade aguda da cisplatina: mecanismos moleculares

            As drogas nefrotóxicas são responsáveis por aproximadamente 20% dos episódios de IRA em pacientes internados e ambulatoriais. A nefrotoxicidade pela cisplatina é um dos principais fatores limitantes em até 20% dos pacientes que recebem a droga, ocasionando lesões em células do epitélio tubular renal. A toxicidade da cisplatina é determinada pelo tecido-alvo e acúmulo nas células, além da interação com diversas estruturas subcelulares e com macromoléculas. A cisplatina se acumula e interfere com o funcionamento de diferentes organelas, tais como: mitocôndrias, lisossomas, retículo endoplasmático, núcleo e membrana celular, gerando inflamação e morte celular. Esta revisão tem como objetivo definir as bases fisiopatológicas e bioquímicas da nefrotoxicidade da cisplatina, revisando os principais mecanismos moleculares que levam à toxicidade tubular da cisplatina.
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              Hesperidin attenuates cisplatin-induced acute renal injury by decreasing oxidative stress, inflammation and DNA damage.

              Nephrotoxicity is an important complication in cancer patients undergoing cisplatin therapy. Oxidative stress, inflammation and apoptosis/necrosis are the major patho-mechanisms of cisplatin induced nephrotoxicity. In the present study, hesperidin, a naturally-occurring bioflavonoid has been demonstrated to have protective effect on cisplatin-induced renal injury in rats. Cisplatin intoxication resulted in structural and functional renal impairment which was revealed by massive histopathological changes and elevated blood urea nitrogen and serum creatinine levels, respectively. Renal injury was associated with oxidative stress/lipid peroxidation as evident by increased reactive oxygen species (ROS) and malondialdehyde (MDA) formation with decreased levels of antioxidants such as reduced glutathione, vitamin C, catalase, superoxide dismutase, glutathione reductase, glutathione peroxidase and glutathione-S-transferase. Cisplatin administration also triggered inflammatory response in rat kidneys by inducing pro-inflammatory cytokine, TNF-α, with the increased expression of myeloperoxidase (MPO). Furthermore, cisplatin increased the activity of caspase-3 and DNA damage with decreased tissue nitric oxide levels. Hesperidin treatment significantly attenuated the cisplatin-induced oxidative stress/lipid peroxidation, inflammation (infiltration of leukocytes and pro-inflammatory cytokine), apoptosis/necrosis (caspase-3 activity with DNA damage) as well as increased expression of nitric oxide in the kidney and improved renal function. Thus, our results suggest that hesperidin co-administration may serve as a novel and promising preventive strategy against cisplatin-induced nephrotoxicity. Copyright © 2012 Elsevier GmbH. All rights reserved.
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                Author and article information

                Journal
                Nutrients
                Nutrients
                nutrients
                Nutrients
                MDPI
                2072-6643
                13 September 2016
                September 2016
                : 8
                : 9
                : 566
                Affiliations
                [1 ]College of Chinese Medicinal Materials, Jilin Agricultural University, Changchun 130118, China; liwei7727@ 123456126.com (W.L.); ymhan@ 123456jlau.edu.cn (M.-H.Y.); y.liu@ 123456jlau.edu.cn (Y.L.); wangzi8020@ 123456126.com (Z.W.)
                [2 ]Institute of Agricultural Modernization, Jilin Agricultural University, Changchun 130118, China; lzhiiu@ 123456126.com
                [3 ]School of Biomedical Sciences, University of Queensland, Brisbane, Queensland 4072, Australia; Chen.chen@ 123456uq.edu.au
                [4 ]Institute of Special Wild Economic Animals and Plant, CAAS, Changchun 132109, China
                Author notes
                [* ]Correspondence: zhjing0701@ 123456163.com (J.Z.); sunyinshi2002@ 123456126.com or sunyinshi2002@ 123456163.com (Y.-S.S.); Tel./Fax: +86-431-84-533-304 (J.Z.); Tel./Fax: +86-431-81-919-856 (Y.-S.S.)
                [†]

                These authors contributed equally to this work.

                Article
                nutrients-08-00566
                10.3390/nu8090566
                5037551
                27649238
                3a59cedc-73b8-4341-92ce-ac6dcd4571e0
                © 2016 by the authors; licensee MDPI, Basel, Switzerland.

                This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC-BY) license ( http://creativecommons.org/licenses/by/4.0/).

                History
                : 10 April 2016
                : 01 September 2016
                Categories
                Article

                Nutrition & Dietetics
                ginsenoside rg5,cisplatin-induced nephrotoxicity,anti-oxidation,anti-inflammation,anti-apoptosis

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