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http://dx.doi.org/10.1016/j.jgr.2018.09.004

Two new triterpenoid saponins derived from the leaves of Panax ginseng and their antiinflammatory activity  

Li, Fu (Key Laboratory of Mountain Ecological Restoration and Bioresource Utilization and Ecological Restoration Biodiversity Conservation Key Laboratory of Sichuan Province, Chengdu Institute of Biology, Chinese Academy of Sciences)
Cao, Yufeng (Jiangsu Collaborative Innovation Center of Regional Modern Agriculture & Environmental Protection/Jiangsu Key Laboratory for Eco-Agricultural Biotechnology Around Hongze Lake, Huaiyin Normal University)
Luo, Yanyan (Jiangsu Collaborative Innovation Center of Regional Modern Agriculture & Environmental Protection/Jiangsu Key Laboratory for Eco-Agricultural Biotechnology Around Hongze Lake, Huaiyin Normal University)
Liu, Tingwu (Jiangsu Collaborative Innovation Center of Regional Modern Agriculture & Environmental Protection/Jiangsu Key Laboratory for Eco-Agricultural Biotechnology Around Hongze Lake, Huaiyin Normal University)
Yan, Guilong (Jiangsu Collaborative Innovation Center of Regional Modern Agriculture & Environmental Protection/Jiangsu Key Laboratory for Eco-Agricultural Biotechnology Around Hongze Lake, Huaiyin Normal University)
Chen, Liang (Jiangsu Collaborative Innovation Center of Regional Modern Agriculture & Environmental Protection/Jiangsu Key Laboratory for Eco-Agricultural Biotechnology Around Hongze Lake, Huaiyin Normal University)
Ji, Lilian (Jiangsu Collaborative Innovation Center of Regional Modern Agriculture & Environmental Protection/Jiangsu Key Laboratory for Eco-Agricultural Biotechnology Around Hongze Lake, Huaiyin Normal University)
Wang, Lun (Key Laboratory of Mountain Ecological Restoration and Bioresource Utilization and Ecological Restoration Biodiversity Conservation Key Laboratory of Sichuan Province, Chengdu Institute of Biology, Chinese Academy of Sciences)
Chen, Bin (Key Laboratory of Mountain Ecological Restoration and Bioresource Utilization and Ecological Restoration Biodiversity Conservation Key Laboratory of Sichuan Province, Chengdu Institute of Biology, Chinese Academy of Sciences)
Yaseen, Aftab (Key Laboratory of Mountain Ecological Restoration and Bioresource Utilization and Ecological Restoration Biodiversity Conservation Key Laboratory of Sichuan Province, Chengdu Institute of Biology, Chinese Academy of Sciences)
Khan, Ashfaq A. (Department of Chemistry, Women University of Azad Jammu and Kashmir)
Zhang, Guolin (Key Laboratory of Mountain Ecological Restoration and Bioresource Utilization and Ecological Restoration Biodiversity Conservation Key Laboratory of Sichuan Province, Chengdu Institute of Biology, Chinese Academy of Sciences)
Jiang, Yunyao (Xiyuan Hospital, China Academy of Chinese Medical Sciences)
Liu, Jianxun (Xiyuan Hospital, China Academy of Chinese Medical Sciences)
Wang, Gongcheng (Department of Urology, The Affiliated Huaian No. 1 People's Hospital of Nanjing Medical University)
Wang, Ming-Kui (Key Laboratory of Mountain Ecological Restoration and Bioresource Utilization and Ecological Restoration Biodiversity Conservation Key Laboratory of Sichuan Province, Chengdu Institute of Biology, Chinese Academy of Sciences)
Hu, Weicheng (Jiangsu Collaborative Innovation Center of Regional Modern Agriculture & Environmental Protection/Jiangsu Key Laboratory for Eco-Agricultural Biotechnology Around Hongze Lake, Huaiyin Normal University)
Publication Information
Journal of Ginseng Research / v.43, no.4, 2019 , pp. 600-605 More about this Journal
Abstract
Background: The leaves and roots of Panax ginseng are rich in ginsenosides. However, the chemical compositions of the leaves and roots of P. ginseng differ, resulting in different medicinal functions. In recent years, the aerial parts of members of the Panax genus have received great attention from natural product chemists as producers of bioactive ginsenosides. The aim of this study was the isolation and structural elucidation of novel, minor ginsenosides in the leaves of P. ginseng and evaluation of their antiinflammatory activity in vitro. Methods: Various chromatographic techniques were applied to obtain pure individual compounds, and their structures were determined by nuclear magnetic resonance and high-resolution mass spectrometry, as well as chemical methods. The antiinflammatory effect of the new compounds was evaluated on lipopolysaccharide-stimulated RAW 264.7 cells. Results and conclusions: Two novel, minor triterpenoid saponins, ginsenoside $LS_1$ (1) and 5,6-didehydroginsenoside $Rg_3$ (2), were isolated from the leaves of P. ginseng. The isolated compounds 1 and 2 were assayed for their inhibitory effect on nitric oxide production in LPS-stimulated RAW 264.7 cells, and Compound 2 showed a significant inhibitory effect with $IC_{50}$ of $37.38{\mu}M$ compared with that of NG-monomethyl-L-arginine ($IC_{50}=90.76{\mu}M$). Moreover, Compound 2 significantly decreased secretion of cytokines such as prostaglandin $E_2$ and tumor necrosis factor-${\alpha}$. In addition, Compound 2 significantly suppressed protein expression of inducible nitric oxide synthase and cyclooxygenase-2. These results suggested that Compound 2 could be used as a valuable candidate for medicinal use or functional food, and the mechanism is warranted for further exploration.
Keywords
Antiinflammatory activity; Panax ginseng; Triterpenoid saponins;
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Times Cited By KSCI : 3  (Citation Analysis)
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1 Lee YY, Park JS, Jung JS, Kim DH, Kim HS. Anti-inflammatory effect of ginsenoside Rg5 in lipopolysaccharide-stimulated BV2 microglial cells. Int J Mol Sci 2013;14:9820-33.   DOI
2 Bueno-Silva B, Kawamoto D, Ando-Suguimoto ES, Casarin RCV, Alencar SM, Rosalen PL, Mayer MPA. Brazilian red propolis effects on peritoneal macrophage activity: nitric oxide, cell viability, pro-inflammatory cytokines and gene expression. J Ethnopharmacol 2017;207:100-7.   DOI
3 Xie JT, Mehendale SR, Wang A, Aung HH, Wu J, Osinski J, Yuan CS. American ginseng leaf: ginsenoside analysis and hypoglycemic activity. Pharmacol Res 2004;49:113-7.   DOI
4 Oh JY, Kim YJ, Jang MG, Joo SC, Kwon WS, Kim SY, Jung SK, Yang DC. Investigation of ginsenosides in different tissues after elicitor treatment in Panax ginseng. J Ginseng Res 2014;38:270-7.   DOI
5 Cheng YJ, Zhang M, Liang QL, Hu P, Wang YM, Jun FW, Luo GA. Two-step preparation of ginsenoside Re, $Rb_{1}$, Rc and $Rb_{2}$ from the root of Panax ginseng by high-performance counter-current chromatography. Sep Purif Technol 2011;77:347-54.   DOI
6 Li TSC, Mazza G, Cottrell AC, Gao L. Ginsenosides in roots and leaves of American ginseng. J Agric Food Chem 1996;44:717-20.   DOI
7 Leung KW, Pon YL, Wong RNS, Wong AST. Ginsenoside-$Rg_{1}$ induces vascular endothelial growth factor expression through the glucocorticoid receptorrelated phosphatidylinositol 3-kinase/akt and ${\beta}$-catenin/T-cell factordependent pathway in human endothelial cells. J Biol Chem 2006;281:36280-8.   DOI
8 Leung KW, Cheung LWT, Pon YL, Wong RNS, Mak NK, Fan TPD. Au SCI, Tombran-Tink J, Wong AST. Ginsenoside $Rb_{1}$ inhibits tube-like structure formation of endothelial cells by regulating pigment epithelium-derived factor through the oestrogen ${\beta}$ receptor. Brit J Pharmacol 2007;152:207-15.   DOI
9 Wang HW, Peng DC, Xie JT. Ginseng leaf-stem: bioactive constituents and pharmacological functions. Chin Med UK 2009;4:20.   DOI
10 Shehzad A, Parveen S, Qureshi M, Subhan F, Lee YS. Decursin and decursinol angelate: molecular mechanism and therapeutic potential in inflammatory diseases. Inflamm Res 2018;67:209-18.   DOI
11 Kim E, Yi YS, Son YJ, Han SY, Kim DH, Nam G, Hossain MA, Kim JH, Park J, Chol JY. BIOGF1K, a compound K-rich fraction of ginseng, plays an antiinflammatory role by targeting an activator protein-1 signaling pathway in RAW 264.7 macrophage-like cells. J Ginseng Res 2018;42(2):233.   DOI
12 Cong DL, Song CC, Xu JD. Isolation and identification of 20 (s)-ginsenoside-Rh1, -Rh2 and ginsenoside-Rh3 from the leaves of Panax quinquefolium. Chin Pharm J 2000;35:82-4.
13 Liu GY, Li XW, Wang NB, Zhou HY, Wei W, Gui MY, Yang B, Jin YR. Three new dammarane-type triterpene saponins from the leaves of Panax ginseng C.A. Meyer. J Asian Nat Prod Res 2010;12:865-73.   DOI
14 Zhu TT, Li F, Chen B, Deng Y, Wang MK, Li LH. Studies on the saponins from the leaves of Panax ginseng. Chin J Appl Environ Biol 2016;22:70-4.
15 Yang XW, Li LY, Tian JM, Zhang ZW, Ye JM, Gu WF. Ginsenoside-$Rg_{6}$, a novel triterpenoid saponin from the stem-leaves of Panax ginseng C.A. Meyer. Chin Chem Lett 2000;11:909-12.
16 Ryu JH, Park JH, Eun JH, Jung JH, Sohn DH. A dammrane glycoside from Korean red ginseng. Phytochemistry 1997;44:931-3.   DOI
17 Park IH, Kim NY, Han SB, Kim JM, Kwon SW, Kim HJ, Park MK, Park JH. Three new dammarane glycosides from heat processed ginseng. Arch Pharm Res 2002;25:428-32.   DOI
18 Ryu JH, Park JH, Kim TH, Sohn DH, Kim JM, Park JH. A genuine dammarane glycoside, (20E)-ginsenoside $F_{4}$ from Korean red ginseng. Arch Pharm Res 1996;19:335-6.   DOI
19 Baek SH, Shin BK, Kim NJ, Chang SY, Park JH. Protective effect of ginsenosides $Rk_{3}$ and $Rh_{4}$ on cisplatin-induced acute kidney injury in vitro and in vivo. J Ginseng Res 2017;41:233-9.   DOI
20 Ying A, Yu QT, Guo L, Zhang WS, Liu JF, Li Y, Song H, Li P, Qi LW, Ge YZ, et al. Structuraleactivity relationship of ginsenosides from steamed ginseng in the treatment of erectile dysfunction. Am J Chin Med 2018:1-19.
21 Wen R, Lv HN, Jiang Y, Tu PF. Anti-inflammatory flavone and chalcone derivatives from the roots of Pongamia pinnata (L.) Pierre. Phytochemistry 2018;149:56-63.   DOI
22 Danie LO, Rosina LF. Immunomodulating peptides for food allergy prevention and treatment. Crit Rev Food Sci Nutr 2018;58:1629-49.   DOI
23 Wan JB, Zhang QW, Hong SJ, Guan J, Ye WC, Li SP, Simon Lee MY, Wang YT. 5,6-didehydroginsenosides from the roots of Panax notoginseng. Molecules 2010;15:8169-76.   DOI
24 Yang H, Kim JY, Kim SO, Yoo YH, Sung SH. Complete $^{1}H$-NMR and $^{13}C$-NMR spectral analysis of the pairs of 20(S) and 20(R) ginsenosides. J Ginseng Res 2014;38:194-202.   DOI
25 Kmiec Z, Cyman M, Slebioda TJ. Cells of the innate and adaptive immunity and their interactions in inflammatory bowel disease. Adv Med Sci 2017;62(1):1-16.   DOI
26 Zhu G, Wang H, Wang T, Shi F. Ginsenoside Rg1 attenuates the inflammatory response in DSS-induced mice colitis. Int Immunopharmacol 2017;50:1-5.   DOI
27 Yu T, Yang YY, Kwak YS, Song GG, Kim MY, Rhee MH, Cho JY. Ginsenoside Rc from Panax ginseng exerts anti-inflammatory activity by targeting TANKbinding kinase 1/interferon regulatory factor-3 and p38/ATF-2. J Ginseng Res 2017;41:127-33.   DOI
28 Zhang YX, Wang L, Xiao EL, Li SJ, Chen JJ, Gao B, Min GN, Wang ZP, Wu YJ. Ginsenoside-Rd exhibits anti-inflammatory activities through elevation of antioxidant enzyme activities and inhibition of JNK and ERK activation in vivo. Int Immunopharmacol 2013;17:1094-100.   DOI
29 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 2012;65:310-6.   DOI
30 Li J, Du J, Liu D, Cheng BB, Fang FF, Weng L, Wang C, Ling CQ. Ginsenoside Rh1 potentiates dexamethasone0s anti-inflammatory effects for chronic inflammatory disease by reversing dexamethasone-induced resistance. Arthritis Res Ther 2014;16:R106.   DOI
31 Tam DNH, Truong DH, Nguyen TTH, Quynh LN, Tran L, Nguyen HD, Shamandy B, Le TMH, Tran DK, Sayed D, et al. Ginsenoside Rh1: a systematic review of its pharmacological properties. Planta Med 2018;84:139-52.   DOI
32 Liu MT, Zhou Q, Wang JP, Liu JJ, Qi CX, Lai YJ, Zhu HC, Xue YB, Hu ZX, Zhang YH. Anti-inflammatory butenolide derivatives from the coral-derived fungus Aspergillus terreus and structure revisions of aspernolides D and G, butyrolactone VI and 40,80 0-diacetoxy butyrolactone VI. RSC Adv 2018;8:13040-7.   DOI
33 Gao Y, Chu SF, Li JW, Li JP, Zhang Z, Xia CY, Heng Y, Zhang MJ, Hu JF, Wei GN, et al. Anti-inflammatory function of ginsenoside Rg1 on alcoholic hepatitis through glucocorticoid receptor related nuclear factor-kappa B pathway. J Ethnopharmacol 2015;173:231-40.   DOI
34 Kang S, Park SJ, Lee AY, Huang J, Chung HY, Im DS. Ginsenoside Rg3 promotes inflammation resolution through M2 macrophage polarization. J Ginseng Res 2018;42:68-74.   DOI
35 Li F, Yang FM, Liu X, Wang L, Chen B, Li LH, Wang MK. Cucurbitane glycosides from the fruit of Siraitia grosvenori and their effects on glucose uptake in human HepG2 cells in vitro. Food Chem 2017;228:567-73.   DOI
36 Baek KS, Hong YD, Kim Y, Sung NY, Yang S, Lee KM, Park JY, Park JS, Rho HS, Shin SS, et al. Anti-inflammatory activity of AP-SF, a ginsenoside-enriched fraction, from Korean ginseng. J Ginseng Res 2015;39:155-61.   DOI
37 Wang JH, Li X, Wang YJ. A new triterpenoid in the leaves and stems of Panax Quinquefolium L. from Canada. J Shenyang Pharm Univ 1997;14:135-6.
38 Ahmad TB, Liu L, Kokiw M, Benkendorff K. Review of anti-inflammatory, immune-modulatory and wound healing properties of molluscs. J Ethnopharmacol 2018;210:156-78.   DOI