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http://dx.doi.org/10.1016/j.jgr.2014.10.005

Glycosyl glycerides from hydroponic Panax ginseng inhibited NO production in lipopolysaccharide-stimulated RAW264.7 cells  

Cha, Byeong-Ju (Graduate School of Biotechnology, Kyung Hee University)
Park, Ji-Hae (Graduate School of Biotechnology, Kyung Hee University)
Shrestha, Sabina (Graduate School of Biotechnology, Kyung Hee University)
Baek, Nam-In (Graduate School of Biotechnology, Kyung Hee University)
Lee, Sang Min (Graduate School of Biotechnology, Kyung Hee University)
Lee, Tae Hoon (Graduate School of Biotechnology, Kyung Hee University)
Kim, Jiyoung (Graduate School of Biotechnology, Kyung Hee University)
Kim, Geum-Soog (Department of Herbal Crop Research, National Institute of Horticultural and Herbal Science, Rural Development Administration)
Kim, Seung-Yu (Department of Herbal Crop Research, National Institute of Horticultural and Herbal Science, Rural Development Administration)
Lee, Dae-Young (Department of Herbal Crop Research, National Institute of Horticultural and Herbal Science, Rural Development Administration)
Publication Information
Journal of Ginseng Research / v.39, no.2, 2015 , pp. 162-168 More about this Journal
Abstract
Background: Although the aerial parts of hydroponic Panax ginseng are reported to contain higher contents of total ginsenosides than those of roots, the isolation and identification of active metabolites from the aerial parts of hydroponic P. ginseng have not been carried out so far. Methods: The aerial parts of hydroponic P. ginseng were applied on repeated silica gel and octadecylsilane columns to yield four glycosyl glycerides (Compounds 1-4), which were identified based on nuclear magnetic resonance, infrared, fast atom bombardment mass spectrometry, and gas chromatography/mass spectrometry data. Compounds 1-4 were evaluated for inhibition activity on NO production in lipopolysaccharide (LPS)-stimulated RAW264.7 cells. Results and conclusion: The glycosyl glycerides were identified to be (2S)-1-O-7(Z),10(Z),13(Z)-hexadecatrienoyl-3-O-${\beta}$-$\small{D}$-galactopyranosyl-sn-glycerol (1), (2S)-1-O-linolenoyl-3-O-${\beta}$-$\small{D}$-galactopyranosyl-sn-glycerol (2), (2S)-1-O-linolenoyl-2-O-linolenoyl-3-O-${\beta}$-$\small{D}$-galactopyranosyl-sn-glycerol (3), and 2(S)-1-O-linoleoyl-2-O-linoleoyl-3-O-${\beta}$-$\small{D}$-galactopyranosyl-sn-glycerol (4). Compounds 1 and 2 showed moderate inhibition activity on NO production in LPS-stimulated RAW264.7 cells [half maximal inhibitory concentration ($IC_{50}$): $63.8{\pm}6.4{\mu}M$ and $59.4{\pm}6.8{\mu}M$, respectively] without cytotoxicity at concentrations < $100{\mu}M$, whereas Compounds 3 and 4 showed good inhibition effect ($IC_{50}$: $7.7{\pm}0.6{\mu}M$ and $8.0{\pm}0.9{\mu}M$, respectively) without cytotoxicity at concentrations < $20{\mu}M$. All isolated compounds showed reduced messenger RNA (mRNA) expression of interleukin-$1{\beta}$ (IL-$1{\beta}$), IL-6, and tumor necrosis factor-${\alpha}$ in LPS-induced macrophage cells with strong inhibition of mRNA activity observed for Compounds 3 and 4.
Keywords
glycosyl glyceride; hydroponic Panax ginseng; nitro oxide; RAW264.7 cells;
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Times Cited By KSCI : 4  (Citation Analysis)
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1 Kitagawa I, Taniyama T, Shibuya H, Noda T, Yoshikawa M. Chemical studies on crude drug processing. V. On the constituents of ginseng radix rubra (2): comparison of the constituents of white ginseng and red ginseng prepared from the same Panax ginseng root. Yakugaku Zasshi 1987;107:495-505 [Article in Japanese].   DOI
2 Tuntiwachwuttikul P, Pootaeng-On Y, Phansa P, Taylor WC. Cerebrosides and a monoacylmonogalactosylglycerol from Clinacanthus nutans. Chem Pharm Bull (Tokyo) 2004;52:27-32.   DOI
3 Deliorman Orhan D, Hartevioglu A, Kupeli E, Yesilada E. In vivo anti-inflammatory and antinociceptive activity of the crude extract and fractions from Rosa canina L. fruits. J Ethnopharmacol 2007;112:394-400.   DOI
4 Van Wyk BE, Wink M. Medicinal plants of the world. Seoul, Korea: Shinil Books; 2007. p. 224.
5 Park JD, Rhee DK, Lee YH. Biological activities and chemistry of saponins from Panax ginseng C. A. Meyer. Phytochem Rev 2005;4:159-75.   DOI
6 Kitts D, Hu C. Efficacy and safety of ginseng. Public Health Nutr 2000;3: 473-85.
7 Kim HS, Lee EH, Ko SR, Choi KJ, Park JH, Im DS. Effects of ginsenosides Rg3 and Rh2 on the proliferation of prostate cancer cells. Arch Pharm Res 2004;27: 429-35.   DOI
8 Keum YS, Park KK, Lee JM, Chun KS, Park JH, Lee SK, Kwon H, Surh YJ. Antioxidant and anti-tumor promoting activities of the methanol extract of heatprocessed ginseng. Cancer Lett 2000;150:41-8.   DOI
9 Attele AS, Zhou YP, Xie JT, Wu JA, Zhang L, Dey L, Pugh W, Rue PA, Polonsky KS, Yuan CS. Antidiabetic effects of Panax ginseng berry extract and the identification of an effective component. Diabetes 2002;51:1851-8.   DOI
10 Kang KS, Yamabe N, Kim HY, Yokozawa T. Effect of sun ginseng methanol extract on lipopolysaccharide-induced liver injury in rats. Phytomedicine 2007;14:840-5.   DOI
11 Dormann P, Benning C. Galactolipids rule in seed plants. Trends Plant Sci 2002;7:112-8.   DOI
12 Choi SY, Cho CW, Lee Y, Kim SS, Lee SH, Kim KT. Comparison of ginsenoside and phenolic ingredient contents in hydroponically-cultivated ginseng leaves, fruits, and roots. J Ginseng Res 2012;36:425-9.   DOI
13 Kim GS, Lee SE, Noh HJ, Kwon H, Lee SW, Kim SY, Kim YB. Effects of natural bioactive products on the growth and ginsenoside contents of Panax ginseng cultured in an aeroponic system. J Ginseng Res 2012;36:430-41.   DOI
14 Kim GS, Hyun DY, Kim YO, Lee SE, Kwon H, Cha SW, Park CB, Kim YB. Investigation of ginsenosides in different parts of Panax ginseng cultivated by hydroponics. Korean J Hort Sci 2010;28:216-26.
15 Christensen LP. Galactolipids as potential health promoting compounds in vegetable foods. Recent Pat Food Nutr Agric 2009;1:50-8.   DOI
16 Sashidhara KV, Singh SP, Misra S, Gupta J, Misra-Bhattacharya S. Galactolipids from Bauhinia racemosa as a new class of antifilarial agents against human lymphatic filarial parasite, Brugia malayi. Eur J Med Chem 2012;50: 230-5.   DOI
17 Bruno A, Rossi C, Marcolongo G, Di Lena A, Venzo A, Berrie CP, Corda D. Selective in vivo anti-inflammatory action of the galactolipid monogalactosyldiacylglycerol. Eur J Pharmacol 2005;524:159-68.   DOI
18 Lenti M, Gentili C, Pianezzi A, Marcolongo G, Lalli A, Cancedda R, Cancedda FD. Monogalactosyldiacylglycerol anti-inflammatory activity on adult articular cartilage. Nat Prod Res 2009;23:754-62.   DOI
19 Lee SM, Lee TH, Cui E-J, Baek N-I, Hong SG, Chung I-S, Kim JY. Anti-inflammatory effects of cowpea (Vigna sinensis K.) seed extracts and its bioactive compounds. J Korean Soc Appl Biol Chem 2011;54:710-7.   DOI
20 Banskota AH, Stefanova R, Gallant P, Osborne JA, Melanson R, O'Leary SJ. Nitric oxide inhibitory activity of monogalactosylmonoacylglycerols from a freshwater microalgae Chlorella sorokiniana. Nat Prod Res 2013;27: 1028-31.   DOI
21 Kiem PV, Minh CV, Nhiem NX, Cuong NX, Tai BH, Quang TH, Anh Hle T, Yen PH, Ban NK, Kim SH, et al. Inhibitory effect on TNF-${\alpha}$-induced IL-8 secretion in HT-29 cell line by glyceroglycolipids from the leaves of Ficus microcarpa. Arch Pharm Res 2012;35:2135-42.   DOI
22 Yang ZG, Matsuzaki K, Takamatsu S, Kitanaka S. Inhibitory effects of constituents from Morus alba var. multicaulis on differentiation of 3T3-L1 cells and nitric oxide production in RAW264.7 cells. Molecules 2011;16: 6010-22.   DOI
23 Choi WY, Lim HW, Lim CJ. Anti-inflammatory, antioxidative and matrix metalloproteinase inhibitory properties of 20(R)-ginsenoside Rh2 in cultured macrophages and keratinocytes. J Pharm Pharmacol 2013;65:310-6.   DOI