• Title/Summary/Keyword: quercetin glucoside

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Quantitative Analysis of Flavonoids from Salicomia herbacea L. Extracst by LC-MS (LC/MS에 의한 퉁퉁마디의 Flavonoids 정량 분석)

  • Kim, Ha-Song;Yoon, Young-Seung;Cho, Jai-Woo
    • Korean Journal of Medicinal Crop Science
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    • v.16 no.4
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    • pp.231-237
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    • 2008
  • This study was conducted to determine the amount of flavonoids in Salicomia herbacea L. grown by a liquid chromatography / mass spectrometry (LC/MS). The flavonoids-contained quercetin (124.43 ppm), rutin (2.57 ppm), quercetin-3-${\beta}$-glucoside (3992.49 ppm), quercetin-3',4'-glucoside (0.08 ppm) and isorhamnetin (27.81 ppm) were detected in the powder sample. In particular, quercetin-3-${\beta}$-glucoside accounted for more than 99% in hay and 96% in powder. These results suggest that S. herbacea, which is one of halophyte plants, has high functional substances as an antioxidant source.

Isolation and Identification of Flavonoids from Ethanol Extracts of Artemisia vulgaris and Their Antioxidant Activity (쑥의 에탄올 추출물에 함유된 Flavonoid들의 분리 및 동정과 이들의 항산화 효과)

  • Lee, Sang-Jun;Chung, Ha-Yull;Lee, In-Kyoung;Yoo, Ick-Dong
    • Korean Journal of Food Science and Technology
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    • v.31 no.3
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    • pp.815-822
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    • 1999
  • Twenty one flavonoids were isolated from ethyl acetate layer of aqueaus EtOH extracts of Artemisia vulgaris and identified as tricin, jaceosidine, eupafolin, diosmetin, chrysoeriol, homoeriodictyol, isorhamnetin, apigenin, eriodictyol, luteolin, luteolin 7-glucoside, kaempferol 3-glucoside, kaempferol 7-glucoside, kaempferol 3-rhamnoside, kaempferol 3-rutinside, quercetin, quercetin 3-glucoside, quercetin 3-galactoside, quercetrin, quercetin 7-glucoside, rutin, and vietexin. The inhibitory activity for all purified flavonoids were examined against lipid peroxidation in rat liver microsome. All examined flavonoids showed considerable antioxidant activity. Among them, $IC_{50}$ value of apigenin, luteolin, isorhamnetin, quercetin, and eriodictyol were showed higher than that of vitamin E used as positive control. And methoxylated flavonoids, tricin, eupafolin, jaceosidine, diosmetin, and isorhamnetin showed considerable antioxidant activity. Each $IC_{50}$ values were shown at 0.9, 1.0, 1.4, 1.0, and $0.7\;{\mu}g/mL$, respectively.

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Constituents of Carthami flos (홍화의 후라보노이드 성분)

  • Kim, Ki-Heun;Kim, Myung-Nyu
    • YAKHAK HOEJI
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    • v.36 no.6
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    • pp.556-562
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    • 1992
  • Sevral flavonoids were isolated from the ethanol extract of Carthami flos which has been used in treatment of uterin congestion and also as analgesic and antiinflammatory. They were elucidated as kaempferol, quercetin, 6-hydroxy kaempferol, kaempferol 3-glucoside (Astragalin), quercetin 3-glucoside (isoquercitrin), quercetin 7-glucoside (quercimeritrin), kaempferol 3-rutinoside and quercetin 3-rutinoside (rutin). The structures of the isolated compounds were established by spectroscopic and chemical methods.

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Chemical Study on the Leaf of Prunus davidiana

  • Park, Jong-Hee;Kim, Jin-Soo;Lee, Jun-Do;Park, Hee-Juhn
    • Korean Journal of Plant Resources
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    • v.10 no.1
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    • pp.6-10
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    • 1997
  • From the leaf of Prunus davidiana, naringenin and its glucoside, kaempferol and its glucoside, kaempferide glucoside, quercetin glucoside and d-catechin were isolated.

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Flavonoids from Leaves and Exocarps of the Grape Kyoho

  • Park, Hye-Jeong;Cha, Hyeon-Cheol
    • Animal cells and systems
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    • v.7 no.4
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    • pp.327-330
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    • 2003
  • We analyzed and compared profiles of flavonols extracted from leaves and exocarps of the grape Kyoho by TLC, HPLC and UV spectrophotometry. In the exocarps, quercetin 3-O-glucoside was the main compound while isorhamnetin 3-O-glycoside (I) was present in minor amounts. In leaves, on the other hand, quercetin 3-O-glucoside and quercetin 3-O-glucoside-7-O-glucronide were the major compounds while isorhamnetin 3-O-glycoside (II) and kaempferol 3, 7-O-diglycoside were present in minor amounts.

Antigenotoxicity of Quercetin and its Glycosides (Quercetin 및 Quercetin 배당체들의 유전독성억제효과)

  • 허문영;김정한
    • Journal of Food Hygiene and Safety
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    • v.11 no.2
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    • pp.115-121
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    • 1996
  • In order to compare the suppressive effect of quercetin and several its glycosides, such as quercitrin (quercetin-3-rhamnoside), isoquercitrin (quercetin-3-glucoside), hyperin (quercetin-3-galactoside) and tutin (quercetin-3-rhamnosyl glucoside), on the genotoxicity by N-methyl-N-nitrosourea(MNU), in vitro sister chromatid exchange(SCE) test using mouse spleen lymphocytes and in vivo micronucleus test using mouse peripheral blood were performed. MNU-induced SCEs in vitro were not decreased by the simultaneous treatment of test compounds. Among them, quercetin and hyperin showed significant suppressive effects at high dose(10-5M). On the other hand, MNU-induced micronucleated reticulocytes(MNRETS) in vivo were significantly decreased with good dose-dependent manner in all compound tested. However, there were not significant differences between quercetin aglycone and its glycosides in the suppressive aglycone and its glycosides may act as an antigenotoxic agent in vivo and may be useful as a chemopreventive agent of alkylating agent.

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Neuroprotective Effects of Kaempferol, Quercetin, and Its Glycosides by Regulation of Apoptosis (Kaempferol, quercetin 및 그 배당체들의 apoptosis 조절을 통한 신경세포 보호 효과)

  • Kim, Ji Hyun;Lee, Sanghyun;Cho, Eun Ju;Kim, Hyun Young
    • Journal of the Korea Academia-Industrial cooperation Society
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    • v.20 no.2
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    • pp.286-293
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    • 2019
  • Alzheimer's disease (AD) is a neurodegenerative disease caused by accumulation of amyloid beta ($A{\beta}$) in the brain. In the present study, we investigated the neuroprotective effects of four flavonoids such as kaempferol, kaempferol-3-O-glucoside, quercetin, and quercetin-3-${\beta}$-D-glucoside against neuronal apoptosis induced by $A{\beta}$ in SH-SY5Y neuronal cells. Treatment with $A{\beta}$ decreased cell viability compared to the non-treated normal group. However, treatment with the four flavonoids increased cell viability in SH-SY5Y cells treated with $A{\beta}$. In addition, we measured the expression of apoptosis-related proteins such as Bcl-2-associated X protein (Bax) and cleaved caspase-9. Treatment with the four flavonoids down-regulated Bax and cleaved caspase-9 in $A{\beta}$-treated SH-SY5Y neuronal cells. Overall, the results of the present study demonstrated the neuroprotective effect of flavonoids by anti-apoptotic activity in $A{\beta}$-induced SH-SY5Y neuronal cells. These results suggest that these four flavonoids would be useful therapeutic and prevention agents for AD.

Optimization of bioactive isorhamnetin 3-O-glucoside production in Escherichia coli (대장균에서 isorhamnetin 3-O-glucoside의 생합성 최적화)

  • Kim, Bong-Gyu
    • Journal of Applied Biological Chemistry
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    • v.62 no.4
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    • pp.361-366
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    • 2019
  • Isorhamnetin 3-O-glucoside, a member of the flavonol group, has been reported to be effective for inflammatory and ulcer, as well as to alleviate diabetic complications such as neuropathy, nephropathy and retinopathy. Isorhamnetin 3-O-glucoside has been extracted from several plants. Biotransformation is a valuable tool, which is used to produce value-added chemicals with inexpensive compounds. To synthesis isorhamnetin 3-O-glucoside from quercetin, two genes (PGT E82L and ROMT-9) were introduced into Escherichia coli, respectively. In order to synthesis isorhamnetin 3-O-glucoside from quercetin, a co-culture fermentation system was developed by optimizing the medium and temperature for biotransformation, the cell mix ratio, Isopropyl-β-ᴅ-thiogalactoside induction time, and quercetin feed concentration. Finally, isorhamnetin 3-O-glucoside was biosynthesized up to 181.2 mg/L under the optimized biotransformation condition, which was higher 4.7 times than previously reported (39.6 mg/L).

Validation of an HPLC/UV-based method for Salicornia herbacea-derived isorhamnetin-3-O-glucoside and quercetin-3-O-glucoside quantification

  • Park, Jun Yeon;Paje, Leo Adrianne;Kang, Ki Sung;Lee, Sanghyun
    • Journal of Applied Biological Chemistry
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    • v.64 no.3
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    • pp.285-290
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    • 2021
  • Salicornia herbacea is a type of salt marsh plant that has been used in traditional medicine to treat several diseases. Isorhamnetin-3-O-glucoside (I3G) and quercetin-3-O-glucoside (Q3G) are major flavonoids in S. herbacea that are known to exert various pharmacological activities. Therefore, our study sought to validate and optimize an HPLC/UV-based analytical method for I3G and Q3G yield quantification, as well as to determine its limit of detection, limit of quantification, linearity, precision, and accuracy. Upon testing a concentration range of 31.5-1.9 ㎍/mL the results exhibited good linearity (r2 ≥0.9996 and r2 ≥0.9999 for I3G and Q3G, respectively), and the procedure was deemed precise (relative standard deviation of ≤3.19 and ≤3.85%, respectively), and accurate (102.6-105.0 and 92.9-95.2%, respectively). The results showed that our proposed method could be used for rapid I3G and Q3G evaluation in S. herbacea.

Flavonoids from Salix hallaisanensis Leaves (떡버들 잎의 플라보노이드)

  • Oh, Mi-Hyun;Ham, In-Hye;Chung, Sung-Hee;Whang, Wan-Kyun
    • Korean Journal of Pharmacognosy
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    • v.36 no.4 s.143
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    • pp.282-290
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    • 2005
  • The MeOH extract of the the leaves of Salix hallaisanensis (Salicaceae) was partitioned successively with $CHCl_3$, 20% MeOH, 40% MeOH and 60% MeOH solution. From the fractions obtained, 9 compounds were isolated, $diosmetin-7-O-{\beta}-d-glucoside$ (I), $diosmetin-7-O-{\beta}-D-glucosyl-(1{\rightarrow)6)-{\beta}-d-glucoside$ (II), $diosmetin-7-O-{\beta}-d-xylosyl-(1{\rightarrow}6)-{\beta}-D-glucoside$ (III), $quercetin-3-O-{\beta}-d-galactoside$ (hyperoside) (IV), $quercetin-3-O-{\alpha}-l-rhamnosyl-(1{\rightarrow}6)-{\beta}-D-glucoside(rutin)$ (V), luteolin (VI), $luteolin-7-O-{\beta}-d-glucoside$ (VII), $kaempferol-3-O-{\alpha}-l-rhamnosyl-(1{\rightarrow}6)-{\beta}-D-glucoside$ (VIII), and (+)-catechin (IX).