• Title/Summary/Keyword: Panax ginseng ginsenoside

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Preparation of $Ginsenoside-Rh_2$ from Dammarane Saponins of Panax ginseng Leaves (인삼잎의 Dammarane계 사포닌으로부터 $Ginsenoside-Rh_2$의 제조)

  • Cha, Bae-Cheon;Lee, Sang-Guk
    • YAKHAK HOEJI
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    • v.38 no.4
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    • pp.425-429
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    • 1994
  • The genuine aglycone, 20(S)-protopanaxadiol, obtained from the leaves of Panax ginseng as a result of direct alkaline treatment was isolated and characterized by spectroscopic evidences. The study on the yield of genuine aglycone which is produced from the treatment of some kinds of alkali was carried out. $Ginsenoside-Rh_2$ was synthesized by conjugation of 2,3,4,6-tetra-O-acetyl-${\alpha}$-D-glucopyranosyl bromide to 20(S)-protopanaxadiol in the presence of silver carbonate and cadmium cabonate. The preparation of $ginsenoside-Rh_2$ by this method is a new one which the yield of this saponin can be improved in the mild condition.

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Changes in the contents of prosapogenin in Red ginseng (Panax ginseng) depending on the extracting conditions

  • Kim, Shin Jung;Shin, Jin Young;Ko, Sung Kwon
    • Journal of Ginseng Research
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    • v.40 no.1
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    • pp.86-89
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    • 2016
  • This study compared the contents of prosapogenin depending on the extracting conditions of Red ginseng to provide basic information for developing Red ginseng-based functional foods. The content of ginsenoside Rg3 reached their maximum value at 24 h of extraction, followed by 36 h and 72 h of extraction at $100^{\circ}C$.

Effect of Ginseng Components (Ginsenosides and Fat Soluble Fraction) on Rat Liver Glucokinase Activity (쥐의 간 Glucokinase 활성에 미치는 인삼 성분의 영향)

  • 주충노;김선진
    • Journal of Ginseng Research
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    • v.18 no.1
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    • pp.17-24
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    • 1994
  • Effect of ginsenoside mixture, ginsenoside $Rb_1$,$Rb_2$,$Rg_1$ and the fat soluble fraction of the roots of Panax ginseng C.A. Meyer on the activity of glucokinase (GK) in vitro has been observed and found that GK activity was increased about 15c1c at the concentration of ginsenoside mixture and/or the fat soluble fraction being $10^{-7}$,$10^{-5}$%. It was also observed that glucose uptake by rat liver was increased in the presence of either ginsenoside mixture or the fat soluble fraction by perfusion technique. Ginsenoside mixture stimulated various enzymes related to glucose metabolism, however, both ginsenoside mixture and the fat soluble fraction did not stimulate GK activity as expected. Primary culture of liver cells showed that the ginsenoside mixture and the fat soluble fraction increased GK activity significantly and they stimulated the GK activity synergistically in the co-presence of insulin.

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Biotransformation of Major Ginsenoside Rb1 toRd by Dekkera anomala YAE-1 from Mongolian Fermented Milk (Airag)

  • Renchinkhand, Gereltuya;Cho, Soo-Hyun;Park, Young W.;Song, Gyu-Yong;Nam, Myoung Soo
    • Journal of Microbiology and Biotechnology
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    • v.30 no.10
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    • pp.1536-1542
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    • 2020
  • Dekkera anomala YAE-1 strain separated from "airag" (Mongolian fermented mare's milk) produces β-glucosidase, which can convert ginsenoside Rb1 from Panax ginseng. Ginseng- derived bioactive components such as ginsenoside Rb1 have various immunological and anticancer activities. Airag was collected from five different mare milk farms located near Ulaanbaatar, Mongolia. YAE-1 strains were isolated from airag to examine the hydrolytic activities of β-glucosidase on Korean Panax ginseng using an API ZYM kit. Supernatants of selected cultures having β-glucosidase activity were examined for hydrolysis of the major ginsenoside Rb1 at 40℃, pH 5.0. The YAE-1 strain was found to be nearly identical at 99.9% homology with Dekkera anomala DB-7B, and was thus named Dekkera anomala YAE-1. This strain exerted higher β-glucosidase activity than other enzymes. Reaction mixtures from Dekkera anomala YAE-1 showed great capacity for converting ginsenoside Rb1 to ginsenoside Rd. The β-glucosidase produced by Dekkera anomala YAE-1 was able to hydrolyze ginsenoside Rb1 and convert it to Rd during fermentation of the ginseng. The amount of ginsenoside Rd was highly increased from 0 to 1.404 mg/ml in fermented 20% ginseng root at 7 days.

Ginsenoside Content of North American Ginseng (Panax quinquefolius L. Araliaceae) in Relation to Plant Development and Growing Locations

  • Jackson, Chung Ja C.;Dini, Jean-Paul;Lavandier, Clara;Faulkner, Harold;Rupasinghe, H.P. vasantha;Proctor, John T.A.
    • Journal of Ginseng Research
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    • v.27 no.3
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    • pp.135-140
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    • 2003
  • North American ginseng (Panax quinquefolius L.) was analysed for total ginsenosides and ten major ginsenosides (R$_{0}$ , Rb$_1$, Rb$_2$, Rc, Rd, Re, Rf, Rg$_1$, pseudoginsenoside F$_{11}$ and gypenoside XVII), and variations in ginsenoside content with age of plant (over a four-year-period) and geographic location (Ontario versus British Columbia) were investigated. In the roots the total ginsenoside content increased with age up to 58-100 mgㆍg$^{-1}$ dry weights in the fourth year, but in leaves it remained constant over time. Roots and leaves, moreover, had different proportions of individual ginsenosides. The most abundant ginsenosides were Rb$_1$ (56mgㆍg$^{-1}$ for Ontario; 37mgㆍg$^{-1}$ for British Columbia) and Re (21mgㆍg$^{-1}$ for Ontario; 15 mgㆍg$^{-1}$ for British Columbia) in roots, and Rd (28-38 mgㆍg$^{-1}$ ), Re (20-25 mgㆍg$^{-1}$ ), and Rb$_2$ (13-19 mgㆍg$^{-1}$ ) in leaves. Measurable quantities of Rf were found in leaves (0.4-1.8 mgㆍg$^{-1}$ ) but not in roots or stems. Our results show that ginsenoside profiles in general, and Rf in particular, could be used for chemical fingerprinting to distinguish the different parts of the ginseng plant, and that ginseng leaves could be valuable sources of the ginsenosides Rd, Re, and Rb$_2$.

Complete Biotransformation of Protopanaxatriol-Type Ginsenosides in Panax ginseng Leaf Extract to Aglycon Protopanaxatriol by β-Glycosidases from Dictyoglomus turgidum and Pyrococcus furiosus

  • Yang, Eun-Joo;Shin, Kyung-Chul;Lee, Dae Young;Oh, Deok-Kun
    • Journal of Microbiology and Biotechnology
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    • v.28 no.2
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    • pp.255-261
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    • 2018
  • Aglycon protopanaxatriol (APPT) has valuable pharmacological effects such as memory enhancement and tumor inhibition. ${\beta}$-Glycosidase from the hyperthermophilic bacterium Dictyoglomus turgidum (DT-bgl) hydrolyzes the glucose residues linked to APPT, but not other glycoside residues. ${\beta}$-Glycosidase from the hyperthermophilic bacterium Pyrococcus furiosus (PF-bgl) hydrolyzes the outer sugar at C-6 but not the inner glucose at C-6 or the glucose at C-20. Thus, the combined use of DT-bgl and PF-bgl is expected to increase the biotransformation of PPT-type ginsenosides to APPT. We optimized the ratio of PF-bgl to DT-bgl, the concentrations of substrate and enzyme, and the reaction time to increase the biotransformation of ginsenoside Re and PPT-type ginsenosides in Panax ginseng leaf extract to APPT. DT-bgl combined with PF-bgl converted 1.0 mg/ml PPT-type ginsenosides in ginseng leaf extract to 0.58 mg/ml APPT without other ginsenosides, with a molar conversion of 100%. We achieved the complete biotransformation of ginsenoside Re and PPT-type ginsenosides in ginseng leaf extract to APPT by the combined use of two ${\beta}$-glycosidases, suggesting that discarded ginseng leaves can be used as a source of the valuable ginsenoside APPT. To the best of our knowledge, this is the first quantitative production of APPT using ginsenoside Re, and we report the highest concentration and productivity of APPT from ginseng extract to date.

Studies of Ginseng on the Antistress Effects (인삼(人蔘)의 항(抗)스트레스작용(作用)에 관(關)한 연구(硏究))

  • Kim, Nak-Doo;Hahn, Byung-Hoon;Lee, Eun-Bang;Kong, Jae-Yang;Kim, Myoung-Hye;Jin, Chang-Bae
    • Korean Journal of Pharmacognosy
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    • v.10 no.2
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    • pp.61-67
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    • 1979
  • Two pure saponin components, Panax saponin C (protopanaxatriol derivative, ginsenoside Re) and Panax saponin E (protopanaxadiol derivative, ginsenoside $Rb_l$) were isolated from Panax ginseng root and their acute toxicities in mice and antistress effects in rats were investigated. Average lethal doses $(LD_{50})$ of ginsenoside Re were 130mg/kg (i.v.), more than 1,000mg/kg (i.p.) and more than 1,500mg/kg (s.c.), respectively. Average lethal dose of ginsenoside $Rb_{1}$ was 243mg/kg intravenously. Adrenal ascorbic acid and cholesterol contents were significantly decreased when normal rats were exposed to heat $(40^{\circ}C)$ for 30 min. The reduction of the adrenal ascorbic acid and cholesterol contents in rats was partially prevented when the rats received the ginseng saponins prior to exposure to heat stress and most pronounced effects were observed in rats received ginsenoside Re. However, it was found that administration of ginseng alone, without stress, did not significantly change the ascorbic acid and cholesterol contents in adrenal glands. Eosinophil counts in the blood of the rats were elevated when the rats were exposed to the heat stress, and the elevation of the eosinophil counts were prevented with the ginseng saponins under the stress, but the changes were all insignificant statistically.

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Metabolomic approach for discrimination of processed ginseng genus (Panax ginseng and Panax quinquefolius) using UPLC-QTOF MS

  • Park, Hee-Won;In, Gyo;Kim, Jeong-Han;Cho, Byung-Goo;Han, Gyeong-Ho;Chang, Il-Moo
    • Journal of Ginseng Research
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    • v.38 no.1
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    • pp.59-65
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    • 2014
  • Discriminating between two herbal medicines (Panax ginseng and Panax quinquefolius), with similar chemical and physical properties but different therapeutic effects, is a very serious and difficult problem. Differentiation between two processed ginseng genera is even more difficult because the characteristics of their appearance are very similar. An ultraperformance liquid chromatography-quadrupole time-of-flight mass spectrometry (UPLC-QTOF MS)-based metabolomic technique was applied for the metabolite profiling of 40 processed P. ginseng and processed P. quinquefolius. Currently known biomarkers such as ginsenoside Rf and F11 have been used for the analysis using the UPLC-photodiode array detector. However, this method was not able to fully discriminate between the two processed ginseng genera. Thus, an optimized UPLC-QTOF-based metabolic profiling method was adapted for the analysis and evaluation of two processed ginseng genera. As a result, all known biomarkers were identified by the proposed metabolomics, and additional potential biomarkers were extracted from the huge amounts of global analysis data. Therefore, it is expected that such metabolomics techniques would be widely applied to the ginseng research field.

Ginsenosides Production through in vitro Culture of Adventitous Roots Induced from Panax ginseng "Chunpoong" (인삼 천풍의 부정근 배양을 통한 Ginsenosides 생산)

  • 인준교;이범수;송원섭;양덕춘
    • Korean Journal of Plant Resources
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    • v.17 no.1
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    • pp.7-13
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    • 2004
  • We have investigated the optimal conditions for the growth and ginsenoside production in adventitious root of “Chunpoong” (Panax ginseng C.A. Meyer). Ginseng adventitous roots induced from the embryo of “Chunpoong” were cultured in various plant media supplemented with several growth hormones. The best growth rate and high ginsenoside contents were obtained in B5 medium supplemented with IBA (2 mg/L) and kinetin (0.1 mg/L). The supplement of 2.5 mM KH$_2$PO$_4$ was good for high growth rate of the adventitious roots, but the accumulation of ginsenosides was increased by reducing the KH$_2$PO$_4$ concentration to 1.25 mM. We have established the effective liquid culture system for the optimal growth and ginsenoside production of “Chunpoong” adventitious roots.