• 제목/요약/키워드: Protopanaxatriol

검색결과 138건 처리시간 0.022초

인삼근 유래 칼루스조직의 사포닌 함량에 미치는 2,4-D와 키네틴의 영향 (Effects of 2,4-D and Kinetin on the Production of Saponin in Ginseng Tissue Culture)

  • 김명원
    • Journal of Plant Biology
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    • 제23권3_4호
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    • pp.91-98
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    • 1980
  • In the present study effects of 2,4-D and kinetin on the callus tissue growth of Korean ginseng(Panax ginseng C. A. Meyer), in relation to the synthesis of saponin were investigated. The saponin synthesis in the callus culture of ginseng root was enhanced by 2,4-D and kinetin. The total saponin content of callus grown on the optima growth conditions, that is, 5mg/l of 2,4-D and 2mg/l of kinetin, was about three times as high as that of the 6 year-old ginseng roots commercially used as herbs. The kinetin specifically increased the synthesis of protopanaxadiol group ginsenoside and decreased the syntehsis of protopanaxatriol gropu in callus cultures, while 2,4-D caused to an increase in the synthesis of protopanaxatriol group ginsenoside and decrease the synthesis of protopanaxadiol group.

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Gut microbiota-mediated pharmacokinetics of ginseng saponins

  • Kim, Dong-Hyun
    • Journal of Ginseng Research
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    • 제42권3호
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    • pp.255-263
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    • 2018
  • Orally administered ginsengs come in contact with the gut microbiota, and their hydrophilic constituents, such as ginsenosides, are metabolized to hydrophobic compounds by gastric juice and gut microbiota: protopanxadiol-type ginsenosides are mainly transformed into compound K and ginsenoside Rh2; protopanaxatriol-type ginsenosides to ginsenoside Rh1 and protopanaxatriol, and ocotillol-type ginsenosides to ocotillol. Although this metabolizing activity varies between individuals, the metabolism of ginsenosides to compound K by gut microbiota in individuals treated with ginseng is proportional to the area under the blood concentration curve for compound K in their blood samples. These metabolites such as compound K exhibit potent pharmacological effects, such as antitumor, anti-inflammatory, antidiabetic, antiallergic, and neuroprotective effects compared with the parent ginsenosides, such as Rb1, Rb2, and Re. Therefore, to monitor the potent pharmacological effects of ginseng, a novel probiotic fermentation technology has been developed to produce absorbable and bioactive metabolites. Based on these findings, it is concluded that gut microbiota play an important role in the pharmacological action of orally administered ginseng, and probiotics that can replace gut microbiota can be used in the development of beneficial and bioactive ginsengs.

인삼 재배시 생육기간 동안 환경적 요인인 미세기포수가 ginsenoside 생성에 미치는 영향 (The Effect of Environmental Fine Bubble on the Production of Ginsenoside during the Growth Period of Ginseng Cultivation)

  • 안철현
    • 한국융합학회논문지
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    • 제8권12호
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    • pp.1-7
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    • 2017
  • 본 연구는 환경정화에 주로 사용되는 미세기포를 2년 근 인삼 지속적으로 처리하여 인삼이 성장하면서 변화되는 형태와 ginsenoside 변화를 조사하는 융합적 연구이다. 인삼 재배시 미세기포수를 적용하여 4개월 동안(120일) 재배한 후 인삼의 잎과 뿌리의 부위별 ginsenoside 함량과 조성을 분석하였다. 잎에 일반수를 처리한 결과 protopanaxatriol(PPT) 계열 Re 함량만 월등히 높게 나타났지만 미세기포수를 처리한 결과 protopanaxadiol(PPD) 계열 Rb1, RC, Rb2, Rd 성분도 같이 증가시키는 것을 확인하였다. 특히 Re, Rb1이 다량 증가함으로써 전체적인 total ginsenoside가 증가하는 요인이 되었다. 인삼의 부위별 PD/PT 비율은 미세기포수를 처리한 잎에서는 0.811으로 나타나고 뿌리는 1.28로 나타났다. 이것은 미세기포수 처리가 뿌리에서 ginsenoside의 합성을 유도하여 PD/PT 비율이 1과 가까운 결가를 가져와 유용성분의 증가 및 고른 분포 이루어졌다고 판단된다. 따라서 미세버블수를 사용한 고품질 인삼을 생산하는 재배 방법을 제시하고 인삼의 뿌리와 더불어 잎도 기능성 식품 소재로 활용할 수 있는 가능성을 제시하였다.

인삼엽의 채엽시기에 따른 사포닌 성분의 함량 및 조성 (Changes of saponin Contents in Panax ginseng Leaves by Different Harvesting Months)

  • 장현기
    • 한국식품영양학회지
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    • 제11권1호
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    • pp.82-87
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    • 1998
  • 인삼엽차 제조를 위한 연구의 일환으로 인삼엽의 성숙시기인 7, 8, 9월 중에 인삼엽을 각각 채엽하여 사포닌 함량 및 조성을 비교, 분석한 결과는 다음과 같다. 1. 인삼엽의 사포닌 함량은 7월엽이 17.17%, 8월엽이 16.67%, 9월엽 25.58%로서 채엽시기가 늦어질수록 감소하였으나 ginsenoside pattern은 유사하였다. 2. 인삼엽의 ginsenoide 함량 및 조성은 채엽시기와 관계없이 ginsenosides-Re, -Rd, -Rg1 등이 총사포닌 성분의 70% 이상을 차지하였고 그 다음으로 -Rb1, -Rb2, -Rc 순이었으며 protoparnaxadiol계 사포닌은 8월엽, protopanaxatriol계 사포닌은 9월엽에서 가장 높은 함량을 나타내었다. 3. 인삼엽의 채엽시기별 protopanaxadiol(PD)/protopanaxatriol(PT)계 사포닌의 함유비율은 7월엽의 1.13에서 9월엽은 0.85로 점차 낮아지는 경향을 나타내었다.

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선천성 고혈압 렛드에서 혈압 및 내피의 기능장해에 대한 protopanaxatriol계 배당체의 효과 (Effect of Protopanaxatriol Ginsenosides on the Blood Pressure and Endothelial Dysfunction In the Aorta of Spontaneously Hypertensive Rats)

  • 김낙두;김순회
    • Journal of Ginseng Research
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    • 제21권2호
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    • pp.119-124
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    • 1997
  • Chronic hypertension is associated with impaired endothelial function such as reduced synthesis/release of endothelium-derived relaxing factor(EDRF, nitric oxide) and increased synthesis/release of endothelium-derived contracting factor(EDCF) including prostaglandin endoperoxide($PGH_2$) , superoxide anion both in animals and in humans. We have previously shown that ginsenosides lower the blood pressure and enhance the release of nitric oxide(NO) from endothelial cells in the rat aorta of the normotensive rats. The aim of the present study is to examine whether in vivo treatment of spontaneously hypertensive rats(SHRs) with protopanaxatriol ginsenosides(PPT) reduces the blood pressure and improves endothelial function in the isolated thoracic aorta of SHR. In addition, the contractile response to $PGH_2$ and superoxide anion in the aorta treated with PPT was assessed. SHRs at the age of 16 weeks were savaged with PPT(30 mg/kg/ day) for 2 weeks and systolic blood pressure was measured by the tail-cuff method. Whereas blood pressure was significantly increased in SHRs by 5.4 mmHg during this period of treatment, treatment of SHRs with PPT blocked the elevation of blood pressure. Endothelium-dependent relaxation to acetylcholine was significantly increased in the PPT-treated animals. $PGH_2$- and oxygen-derived free radical-induced contractions were significantly suppressed in aortic rings without endothelium from PPT-treated SHR. These findings indicate that PPT reduces the blood pressure of SHR, which may be associated with either increase of NO release or by antagonizing superoxide anion and PGH2 in the aortic smooth muscle.

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돼지 관상동맥에서 고려인삼의 Protopanaxatriol과 Protopanaxadiol의 혈관이완 효과 (Vasorelaxing Effect by Protopanaxatriol and Protopanaxadiol of Panax ginseng in the Pig Coronary Artery)

  • Chang, Seok-Jong;Suh, Jang-Soo;Jeon, Byeong-Hwa;Nam, Ki-Yeul;Park, Hae-Kun
    • Journal of Ginseng Research
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    • 제18권2호
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    • pp.95-101
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    • 1994
  • Saponin of Panax ginseng (C.A. Meyer) is composed of Protopanaxatriol (PT) and Protopanaxa- diol (PD). We investigated the effects of PT and PD on the contractility and $^{45}Ca$ uptake in the pig coronary artery. Isometric tension in the helical strips and $^{45}Ca$ uptake in the ring strips were measured in the presence or absence of PT and PD. PT and PD did not affect the high K+ (40 mM)-induced contraction but relaxed the ACh-induced contraction in a dose4ependent manner (1~10 mg/dl). The vasorelaxing effect of PT on the ACh-induced contraction was more potent than that of PD. Those relaxations were partially suppressed by the rubbing of endothelium removal. ACh-induced contraction in the $Ca^{2+}$-free Tyrode's solution was suppressed by the pretreatment of PT or PD. Following the depletion of ACh-sensitive intracellular $Ca^{2+}$ pool, ACh-induced contraction was suppressed by the pratreatment of PT or PD. With the pretreatment of PT or PD, $^{45}Ca$ uptake by high K+ (43 mM) was not changed but that by ACh was suppressed in the pig coronary artery. From the above results, we suggested that the vasorelaxing effect of PT and PD of Panax ginseng was due to inhibition of intracellular $Ca^{2+}$ release, inhibition of $Ca^{2+}$ uptake via receptor-operated $Ca^{2+}$ channels and in part a release of vasorelaxing factor from endothelium in pig coronary artery.

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Production of ginsenoside aglycone (protopanaxatriol) and male sterility of transgenic tobacco co-overexpressing three Panax ginseng genes: PgDDS, CYP716A47, and CYP716A53v2

  • Gwak, Yu Shin;Han, Jung Yeon;Choi, Yong Eui
    • Journal of Ginseng Research
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    • 제43권2호
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    • pp.261-271
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    • 2019
  • Background: Protopanaxatriol (PPT) is an aglycone of ginsenosides, which has high medicinal values. Production of PPT from natural ginseng plants requires artificial deglycosylation procedures of ginsenosides via enzymatic or physicochemical treatments. Metabolic engineering could be an efficient technology for production of ginsenoside sapogenin. For PPT biosynthesis in Panax ginseng, damarenediol-II synthase (PgDDS) and two cytochrome P450 enzymes (CYP716A47 and CYP716A53v2) are essentially required. Methods: Transgenic tobacco co-overexpressing P. ginseng PgDDS, CYP716A47, and CYP716A53v2 was constructed via Agrobacterium-mediated transformation. Results: Expression of the three introduced genes in transgenic tobacco lines was confirmed by Reverse transcription-polymerase chain reaction (RT-PCR). Analysis of liquid chromatography showed three new peaks, dammarenediol-II (DD), protopanaxadiol (PPD), and PPT, in leaves of transgenic tobacco. Transgenic tobacco (line 6) contained $2.8{\mu}g/g$ dry weight (DW), $7.3{\mu}g/g$ DW, and $11.6{\mu}g/g$ DW of PPT, PPD, and DD in leaves, respectively. Production of PPT was achieved via cell suspension culture and was highly affected by auxin treatment. The content of PPT in cell suspension was increased 37.25-fold compared with that of leaves of the transgenic tobacco. Transgenic tobacco was not able to set seeds because of microspore degeneration in anthers. Transmission electron microscopy analysis revealed that cells of phloem tissue situated in the center of the anther showed an abnormally condensed nuclei and degenerated mitochondria. Conclusion: We successfully achieved the production of PPT in transgenic tobacco. The possible factors deriving male sterility in transgenic tobacco are discussed.

Enhancement of skin barrier and hydration-related molecules by protopanaxatriol in human keratinocytes

  • Lee, Jeong-Oog;Hwang, So-Hyeon;Shen, Ting;Kim, Ji Hye;You, Long;Hu, Weicheng;Cho, Jae Youl
    • Journal of Ginseng Research
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    • 제45권2호
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    • pp.354-360
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    • 2021
  • Background: Protopanaxatriol (PPT) is a secondary intestinal metabolite of ginsenoside in ginseng. Although the effects of PPT have been reported in various diseases including cancer, diabetes and inflammatory diseases, the skin protective effects of PPT are poorly understood. Methods: HaCaT cells were treated with PPT in a dose-dependent manner. mRNA and protein levels which related to skin barrier and hydration were detected compared with retinol. Luciferase assay was performed to explore the relative signaling pathway. Western blot was conducted to confirm these pathways and excavated further signals. Results: PPT enhanced the expression of filaggrin (FLG), transglutaminase (TGM)-1, claudin, occludin and hyaluronic acid synthase (HAS) -1, -2 and -3. The mRNA expression levels of FLG, TGM-1, HAS-1 and HAS-2 were suppressed under NF-κB inhibition. PPT significantly augmented NF-κB-luc activity and upregulated Src/AKT/NF-κB signaling. In addition, PPT also increased phosphorylation of the mitogen-activated protein kinases (MAPKs) ERK, JNK and p38 and upstream MAPK activators (MEK and MKK). Furthermore, transcriptional activity of AP-1 and CREB, which are downstream signaling targets of MAPK, was enhanced by PPT. Conclusion: PPT improves skin barrier function and hydration through Src/AKT/NF-κB and MAPK signaling. Therefore, PPT may be a valuable component for cosmetics or treating skin disorders.

한국인삼론(韓國人蔘論) (Current Status of Korean Ginseng Research)

  • 한병훈
    • 생약학회지
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    • 제3권3호
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    • pp.151-160
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    • 1972
  • Recent achievements of scientific research on the pharmacologic activities and the chemical problems of dammalene glycosides, which are considered to be effective principles of Korean ginseng, are reviewed and analyzed in view of structure-activity relationship. 1) S. Shibata and his co-workers detected 12 glycoside spots of dammalene series on the two dimensional T.L.C. of total glycoside fraction from Japanese ginseng, and designated them Ginsenoside Rx(x=a, b, c, g, h, etc.) in the order of increasing Rf-value. The aglycones of those glycosides were characterized to be protopanaxadiol for the Ginsenoside $Rx(x=a,\;b_{1},\;b_{2},\;c,\;d,\;e,\;f)$ and protopanaxatriol for the Ginsenoside $Rx(x=g_{1},\;g_{2},\;g_{3},\;h_{1}\;'h_{2})$. Using Korean ginseng as the material for our study, the author and his coworkers isolated a new dammalene glycoside(Panax Saponin C), which comes under the category of protopanaxadiol glycosides based on the classification of S. Shibata et al., and characterized this saponin to be the glycoside of protopanaxatriol series. Furthermore, Panax Saponin C dissociated into $two\;components(C_{1}\;and\;C_{2}-acetate)$ by acetylation, both of which returned to original Panax Saponin C by deacetylation. Based on this result, more than 13 glycoside components of dammalene series will be expected in the Korean ginseng. 2) The structures of protopanaxadiol and protopanaxatriol, the genuine aglycones of dammalene glycosides, are fully established to be structural analogues by S. Shibata and his co-workers, therefore antagonistic and/or analogical activities will be expected for the pharmacologic activities of these glycoside series of structural analogues. K. Takaki and his co-workers found central nervous system (CNS) stimmulant activity from the glycosides of protopanaxatriol series and CNS-depressant activity from the glycosides of protopanaxadiol series. On the other hand, the author and his co-workers found stimmulating activity on the protein synthesis from both the series of dammalene glycosides with delayed and long-lasting characteristics. This delayed and long-lasting characteristics were also observed in the anti-inflammatory activity of glycosides of protopanaxatriol series on their time course tendency. For the convenience's sake of argument, pluralistic pharmacologic activities of dammalene glycosides, which were observed by many workers at various pharmacologic site, may be classified into two main categories; one is pan-cellular activity and the other is organ specific activity to the certain tissue which is a mass of cells differentiated to a certain direction for their special functions in the body. Based on the data of K. Takaki and those of the authors, following assumption will be probable; Pharmacologic activities of both series of glycosides of protopanaxadiol and protopanaxatriol aglycones may be antagonistic on their tissue-specific activities and analogic on their pan-cellular activities. Therefore, the mixture of these two series of glycosides in an appropriate ratio, as the case of total extract of Korean ginseng, will be probably beneficial to the host by increasing the synthesis of some functional proteins, due to the additive action of pan-cellular activity, and with the disappearance of any significant behavioral symptoms due to the antagonism of tissue specific activity. This fact will probably be the main reason why classical trials of pharmacologists failed in re-discovering the efficacy of Korean ginseng with their behavioral test. 3) The author and his co-workers achieved the synthesis of $C^{14}-labelled\;Panax\;Saponin\;A\;on\;C_{25}-C_{27}\;position\;of\;aglycone$ in the interest of tracer studies in vivo. The method will be applicable to other dammalene glycosides regardless of their chemical structure. 4) The author and his co-workers converted chemically betulafolienetriol, a triterpene component of Betula platyphylla, to the protopanaxadiol, one of genuine aglycone of dammalene glycosides.

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