• Title/Summary/Keyword: hACAT1 Inhibitory effect

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ACAT (Acyl-CoA:cholesterol Acyltransferase) Inhibitory Effect and Quantification of Pyranocurmarin in Different Parts of Angelica gigas Nakai (참당귀(Angelica gigas)에서 분리한 pyranocurmarin 성분의 ACAT 저해활성 및 참당귀 부위별 pyranocurmarin 성분의 함량 분석)

  • Kim, Geum-Soog;Park, Chun-Geun;Jeong, Tae-Sook;Cha, Seon-Woo;Baek, Nam-In;Song, Kyung-Sik
    • Journal of Applied Biological Chemistry
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    • v.52 no.4
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    • pp.187-194
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    • 2009
  • Two pyranocoumarin constituents have been isolated from Angelica gigas and were identified as decursinol angelate (1) and decursin (2) by means of NMR analysis, respectively. Human acyl-CoA:cholesterol acyltransferase (hACAT) inhibitory activity of decursinol angelate (1) and decursin (2) was evaluated. Decursin (2) showed significantly inhibitory activity against hACAT1 and hACAT2 with $IC_{50}$ value of 137 and $168\;{\mu}M$, respectively, whereas decursinol angelate (1) exhibited weak ACAT inhibitory activity. These results suggested that decusin from A. gigas might be effective for the prevention and the treatment of hypercholesterolemia or atherosclerosis by inhibitory effect on hACAT. The contents of decursinol angelate (1) and decursin (2) were analyzed in various parts of A. gigas including flower, seed, leaf and root using LC/MS/MS (ESI, positive ion mode, MRM mode). The content of decursinol angelate was increased in order of flower, seed, leaf, and root and decursin content was increased in order of flower, seed, leaf, and root. It was expected that unused parts including leaf and flower of A. gigas might be useful as new functional sources by their high contents of decursin and decursinol angelate.

Human Acyl-CoA: Cholesterol Acyltransferase Inhibitory Effect of Flavonoids from Roots of Glycine max (L.) Merr

  • Lee, Jin-Hwan;Seo, Woo-Duck;Jeong, Seong-Hun;Jeong, Tae-Sook;Lee, Woo-Song;Park, Ki-Hun
    • Journal of Applied Biological Chemistry
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    • v.49 no.2
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    • pp.57-61
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    • 2006
  • Isoflavones 1-3 and pterocarpans 4-8 were isolated from methanol extract of roots of Glycine max. In inhibitory effect against human acyl-CoA:cholesterol acytransferase (ACAT)-1 and ACAT-2, glyceollin I 5 showed potent hACAT-1 ($IC_{50}=299.0{\mu}M$) and hACAT-2 ($IC_{50}=82.7{\mu}M$) inhibitory activities.

Ergosterol Peroxide from Flowers of Erigeron annuus L.as an Anti-Atherosclerosis Agent

  • Kim, Dong-Hyun;Jung, Sung-Je;Chung, In-Sik;Lee, Youn-Hyung;Kim, Dae-Keun;Kim, Sung-Hoon;Kwon, Byoung-Mog;Jeong, Tae-Sook;Park, Mi-Hyun;Seoung, Nak-Sul;Baek, Nam-In
    • Archives of Pharmacal Research
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    • v.28 no.5
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    • pp.541-545
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    • 2005
  • Flowers of Erigeron annuus L. were extracted with 80% aqueous MeOH, and the concentrated extract was partitioned with EtOAc, n-BuOH, and H$_2$O. Repeated silica gel and OD S column chromatography of the EtOAc fraction led to the isolation of a sterol, through activityguided fractionation, using ACAT inhibitory activity measurements. From the physico-chemical data, including NMR, MS, and IR, the chemical structure of the compound was determined to be an ergosterol peroxide (1), which has been isolated for the first time from this plant. This compound exhibited hACAT-1 and Lp-PLA$_2$ inhibitory effects, with inhibitory values of 51.6 ${\pm}$ 0.9 and 51 .7 ${\pm}$ 1.2%, at a treatment concentration of 0.23 mM.

Deveolopment of Biologically Active Compounds from Edible Plant Sources-XII. - Flavonol Glycosides from Trigonotis peduncularis Benth and its hACAT1 Inhibitory Activity - (식용식물자원으로부터 활성물질의 탐색-XII. - 꽃마리(Trigonotis peduncularis Benth.)로부터 Flavonol 배당체의 분리 및 hACAT1 저해활성 -)

  • Yang, Hye-Joung;Song, Myoung-Chong;Bang, Myun-Ho;Lee, Jin-Hee;Chung, In-Sik;Lee, Youn-Hyung;Jeong, Tae-Sook;Kwon, Byoung-Mog;Kim, Sung-Hoon;Kim, Dae-Keun;Park, Mi-Hyun;Baek, Nam-In
    • Applied Biological Chemistry
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    • v.48 no.1
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    • pp.98-102
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    • 2005
  • The MeOH extracts obtained from whole plant of Trigonotis peduncularis Benth. were solvent fractionated using EtOAc, n-BuOH and water, successively. The EtOAc and n-BuOH fractions gave four flavonol glycosides through application of silica gel and octadecyl silica gel (ODS) column chromatographies. The chemical structures of the flavonol glycosides were determined by the interpretation of several spectral data including 2D-NMR as $kaempferol-3-O-{\beta}-{D}-glucopyranoside\;(astragalin,\;1),\;kaempferol-3-O-{\alpha}-{L}-rhamnopyranosyl\;(1{\rightarrow}6)-{\beta}-{D}-glucopyranoside\;(nicotiflorin,\;2),\;quercetin-3-O-{\alpha}-{L}-rhamnopyranosyl(1{\rightarrow}6)-{\beta}-{D}-glucopyranoside\;(rutin,\;3),\;quercetin-3-O-{\beta}-{D}-glucopyranoside\;(isoquercitrin,\;4)$. The flavonoids have been first isolated from this plant. Nicotiflorin $(100\;{\mu}g/ml)$ showed $68.3{\pm}1.2%$ of the inhibitory effect on hACAT1(human Acyl CoA: cholesterol transferase 1) activity.

Glycerides from the Aerial Parts of Garland (Chrysanthemum coronarium L.) and Their Inhibitory Effects on ACAT, DGAT, FPTase, and $\beta$-Secretase

  • Song, Myoung-Chong;Yang, Hye-Joung;Cho, Jin-Gyeong;Chung, In-Sik;Kwon, Byoung-Mog;Kim, Dae-Keun;Baek, Nam-In
    • Food Science and Biotechnology
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    • v.18 no.1
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    • pp.95-102
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    • 2009
  • The aerial parts of garland (Chrysanthemum coronarium L.) were extracted in 80% aqueous methanol (MeOH) and the concentrated extract was then partitioned using ethyl acetate (EtOAc), n-butanol (n-BuOH), and $H_2O$, successively. EtOAc and n-BuOH fractions resulted in 4 glycerides with the application of octadecyl silica gel and silica gel column chromatography. The chemical structures of the glycerides were determined using several spectroscopic methods, including nuclear magnetic resonance (NMR) and mass spectrometry (MS) as (2S)-1-O-palmitoyl-sn-glycerol (1), (2S)-1-O-oleoyl-2-O-oleoyl- 3-O-$\beta$-D-galactopyranosyl-sn-glycerol (2), (2S)-1-O-palmitoyl-2-O-linoleoyl-3-O-phosphorouscholine-sn-glycerol (3), and (2S)-1-O-linolenoyl-2-O-palmitoyl-3-O-[$\alpha$-D-galactopyrasyl-($1{\rightarrow}6$)-$\beta$-D-galactopyranosyl]-sn-glycerol (4). The free fatty acids of these glycerides were determined with gas chromatography (GC)-MS analysis following alkaline hydrolysis and methylation. These glycerides demonstrated an inhibitory effect on acyl-CoA: cholesterol acyltransferase (ACAT, compound 1: $45.6{\pm}0.2%$ at $100{\mu}g/mL$), diacylglycerol acyltransferase (DGAT, compound 1: $59.1{\pm}0.1%$ at $25{\mu}g/mL$), farnesyl protein transferase (FPTase, compound 2: $98.0{\pm}0.1%$; compound 3: $55.2{\pm}0.1%$ at $100{\mu}g/mL$), and $\beta$-secretase ($IC_{50}$, compound 4: $2.6{\mu}g/mL$) activity. This paper is the first report on the isolation of these glycerides from garland and their inhibitory activity on ACAT, DGAT, FPTase, and $\beta$-secretase.

Triterpenoids from the Flower of Campsis grandiflora K. Schum. As Human Acyl-CoA: Cholesterol Acyltransferase Inhibitors

  • Kim, Dong-Hyun;Han, Kyung-Min;Chung, In-Sik;Kim, Dae-Keun;Kim, Sung-Hoon;Kwon, Byoung-Mog;Jeong, Tae-Sook;Park, Mi-Hyun;Ahn, Eun-Mi;Baek, Nam-In
    • Archives of Pharmacal Research
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    • v.28 no.5
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    • pp.550-556
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    • 2005
  • The flower of Campsis grandiflora K. Schum. Was extracted with 80% aqueous MeOH, and the concentrated extract was partitioned with EtOAc, n-BuOH and H$_2$O. From the EtO Ac fraction, seven triterpenoids were isolated through the repeated silica gel, ODS column chromatographies and preparative HPLC. From the result of physico- chemical data including NMR, MS and IR, the chemical structures of the compounds were determined as 3${\beta}$-hydroxyolean-12-en-28-oic acid (oleanolic acid, 1), 3${\beta}$-hydroxyurs-12-en-28-oic acid (ursolic acid, 2), 3${\beta}$-hydroxyurs-12-en-28-al (ursolic aldehyde, 3), 2${\alpha}$,3${\beta}$-dihydroxyolean-12-en-28-oic acid (maslinic acid, 4), 2${\alpha}$,3${\beta}$-dihydroxyurs-12-en-28-oic acid (corosolic acid, 5), 3${\beta}$,23-dihydroxyurs-12- en-28-oic acid (23-hydroxyursolic acid ,6) and 2${\alpha}$,3${\beta}$,23-trihydroxyolean-12-en-28- oic acid (arjunolic acid, 7). These teriterpenoids were isolated for the first time from this plant. Also, compounds 4, 5, 6, and 7 revealed relatively high hACAT-1 inhibitory activity with the value of 46.2${\pm}$1.1, 46.7${\pm}$0.9, 41.5${\pm}$1.3 and 60.8${\pm}$1.1% at the concentration of 100${\mu}$g/mL, respectively.