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http://dx.doi.org/10.4142/jvs.2007.8.1.39

Radioprotective effects of an acidic polysaccharide of Panax ginseng on bone marrow cells  

Kim, Hyun-Ji (Department of Veterinary Medicine, College of Applied Life Sciences, Cheju National University)
Kim, Mi-Hyoung (Department of Veterinary Medicine, College of Applied Life Sciences, Cheju National University)
Byon, Yun-Young (Applied Radiological Science Research Institute, Cheju National University)
Park, Jae-Woo (Department of Nuclear and Energy Engineering, College of Engineering, Cheju National University)
Jee, Young-Heun (Department of Veterinary Medicine, College of Applied Life Sciences, Cheju National University)
Joo, Hong-Gu (Department of Veterinary Medicine, College of Applied Life Sciences, Cheju National University)
Publication Information
Journal of Veterinary Science / v.8, no.1, 2007 , pp. 39-44 More about this Journal
Abstract
An acidic polysaccharide of Panax ginseng (APG), so called ginsan is known to have important immunomodulatory activities. It was recently reported that APG has radioprotective effects in mice but the detailed mechanism was not fully elucidated. This study examined the effects of APG on bone marrow cells (BMs). The phenotypical and functional changes in APG-treated BMs after gamma radiation were studied. The benefit of APG on BMs damaged by gamma radiation was determined by measuring the cell viability. Using 2 different assays, a pretreatment with APG significantly increased the viability of BMs against gamma radiation. APG-treated BMs had a significantly higher amount of IL-12, which is a major cytokine for immune responses, compared with the medium-treated BMs. The expression of MHC class II molecules of APG-treated BMs was also increased, and APG-treated BMs showed significantly higher levels of allogeneic CD4+ T lymphocyte proliferation. Furthermore, APG-treated mice had a larger number of BMs after gamma radiation than the control mice, and the BMs of APG-treated mice were successfully cultured into dendritic cells, which are the representative antigenpresenting cells. Overall, this study shows that APG alters the phenotype of BMs, increases the viability and alloreactivity of BMs after gamma radiation both in vitro and in vivo. Therefore, APG may be a good candidate radioprotective agent for BMs.
Keywords
bone marrow cells; gamma radiation; ginsan; Panax ginseng; radioprotection;
Citations & Related Records
Times Cited By KSCI : 8  (Citation Analysis)
Times Cited By Web Of Science : 19  (Related Records In Web of Science)
Times Cited By SCOPUS : 19
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1 Han Y, Son SJ, Akhalaia M, Platonov A, Son HJ, Lee KH, Yun YS, Song JY. Modulation of radiation-induced disturbances of antioxidant defense systems by ginsan. Evid Based Complement Alternat Med 2005, 2, 529-536   DOI
2 Joo SS, Won TJ, Kim MS, Lee DI. Hematopoietic effect of ginsenoside Rg3 in ICR mouse primary cultures and its application to a biological response modifier. Fitoterapia 2004, 75, 337-341   DOI   ScienceOn
3 Neta R. Modulation with cytokines of radiation injury: suggested mechanisms of action. Environ Health Perspect 1997, 105 (Suppl 6), 1463-1465   DOI
4 Shin JY, Song JY, Yun YS, Yang HO, Rhee DK, Pyo S. Immunostimulating effects of acidic polysaccharides extract of Panax ginseng on macrophage function. Immunopharmacol Immunotoxicol 2002, 24, 469-482   DOI   ScienceOn
5 Rades D, Fehlauer F, Bajrovic A, Mahlmann B, Richter E, Alberti W. Serious adverse effects of amifostine during radiotherapy in head and neck cancer patients. Radiother Oncol 2004, 70, 261-264   DOI   ScienceOn
6 Song JY, Akhalaia M, Platonov A, Kim HD, Jung IS, Han YS, Yun YS. Effects of polysaccharide ginsan from Panax ginseng on liver function. Arch Pharm Res 2004, 27, 531- 538   DOI   ScienceOn
7 Song JY, Han SK, Bae KG, Lim DS, Son SJ, Jung IS, Yi SY, Yun YS. Radioprotective effects of ginsan, an immunomodulator. Radiat Res 2003, 159, 768-774   DOI   ScienceOn
8 Arora R, Gupta D, Chawla R, Sagar R, Sharma A, Kumar R, Prasad J, Singh S, Samanta N, Sharma RK. Radioprotection by plant products: present status and future prospects. Phytother Res 2005, 19, 1-22   DOI   ScienceOn
9 Kumar M, Sharma MK, Saxena PS, Kumar A. Radioprotective effect of Panax ginseng on the phosphatases and lipid peroxidation level in testes of Swiss albino mice. Biol Pharm Bull 2003, 26, 308-312   DOI   ScienceOn
10 Lee YS, Chung IS, Lee IR, Kim KH, Hong WS, Yun YS. Activation of multiple effector pathways of immune system by the antineoplastic immunostimulator acidic polysaccharide ginsan isolated from Panax ginseng. Anticancer Res 1997, 17, 323-331
11 Zhang JS, Sigdestad CP, Gemmell MA, Grdina DJ. Modification of radiation response in mice by fractionated extracts of Panax ginseng. Radiat Res 1987, 112, 156-163   DOI
12 Kang KA, Zhang R, Lee KH, Chae S, Kim BJ, Kwak YS, Park JW, Lee NH, Hyun JW. Protective effect of triphlorethol-A from Ecklonia cava against ionizing radiation in vitro. J Radiat Res (Tokyo) 2006, 47, 61-68   DOI   ScienceOn
13 Han SK, Song JY, Yun YS, Yi SY. Ginsan improved Th1 immune response inhibited by gamma radiation. Arch Pharm Res 2005, 28, 343-350   과학기술학회마을   DOI
14 Ivanova T, Han Y, Son HJ, Yun YS, Song JY. Antimutagenic effect of polysaccharide ginsan extracted from Panax ginseng. Food Chem Toxicol 2006, 44, 517-521   DOI   ScienceOn
15 Lee HJ, Kim SR, Kim JC, Kang CM, Lee YS, Jo SK, Kim TH, Jang JS, Nah SY, Kim SH. In Vivo radioprotective effect of Panax ginseng C.A. Meyer and identification of active ginsenosides. Phytother Res 2006, 20, 392-395   DOI   ScienceOn
16 Wrembel-Wargocka J, Jablonska H, Chomiczewski K. Clinical use of amifostine (WR-2721) as a preparation protecting healthy tissues from the cytotoxic effects of chemotherapy and radiation therapy. Przegl Lek 1996, 53, 820-825
17 Ahn JY, Choi IS, Shim JY, Yun EK, Yun YS, Jeong G, Song JY. The immunomodulator ginsan induces resistance to experimental sepsis by inhibiting Toll-like receptor-mediated inflammatory signals. Eur J Immunol 2006, 36, 37-45   DOI   ScienceOn
18 Lee TK, Johnke RM, Allison RR, O'Brien KF, Dobbs LJ Jr. Radioprotective potential of ginseng. Mutagenesis 2005, 20, 237-243   DOI   ScienceOn
19 Dalmau SR, Freitas CS, Savino W. Radio- and chemoprotection of bone marrow cells by opposite cell cycle-acting cytokines. Leuk Res 1997, 21, 93-99   DOI   ScienceOn
20 Joo HG, Goedegebuure PS, Sadanaga N, Nagoshi M, von Bernstorff W, Eberlein TJ. Expression and function of galectin-3, a beta-galactoside-binding protein in activated T lymphocytes. J Leukoc Biol 2001, 69, 555-564
21 Mori M, Desaintes C. Gene expression in response to ionizing radiation: an overview of molecular features in hematopoietic cells. J Biol Regul Homeost Agents 2004, 18, 363-371
22 Santini V, Giles FJ. The potential of amifostine: from cytoprotectant to therapeutic agent. Haematologica 1999, 84, 1035-1042