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  • 槲皮素3-O-葡萄糖酸苷

    Quercetin-3-O-glucuronide

    槲皮素3-O-葡萄糖酸苷
    产品编号 CFN92172
    CAS编号 22688-79-5
    分子式 = 分子量 C21H18O13 = 478.4
    产品纯度 >=98%
    物理属性 Yellow powder
    化合物类型 Flavonoids
    植物来源 The vines of Vitis vinifera
    ChemFaces的产品在影响因子大于5的优秀和顶级科学期刊中被引用
    提供自定义包装
    产品名称 产品编号 CAS编号 包装 QQ客服
    槲皮素3-O-葡萄糖酸苷 CFN92172 22688-79-5 10mg QQ客服:1457312923
    槲皮素3-O-葡萄糖酸苷 CFN92172 22688-79-5 20mg QQ客服:1457312923
    槲皮素3-O-葡萄糖酸苷 CFN92172 22688-79-5 50mg QQ客服:1457312923
    槲皮素3-O-葡萄糖酸苷 CFN92172 22688-79-5 100mg QQ客服:1457312923
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    ChemFaces的产品在许多优秀和顶级科学期刊中被引用

    Cell. 2018 Jan 11;172(1-2):249-261.e12.
    doi: 10.1016/j.cell.2017.12.019.
    IF=36.216(2019)

    PMID: 29328914

    Cell Metab. 2020 Mar 3;31(3):534-548.e5.
    doi: 10.1016/j.cmet.2020.01.002.
    IF=22.415(2019)

    PMID: 32004475

    Mol Cell. 2017 Nov 16;68(4):673-685.e6.
    doi: 10.1016/j.molcel.2017.10.022.
    IF=14.548(2019)

    PMID: 29149595

    ACS Nano. 2018 Apr 24;12(4): 3385-3396.
    doi: 10.1021/acsnano.7b08969.
    IF=13.903(2019)

    PMID: 29553709

    Nature Plants. 2016 Dec 22;3: 16206.
    doi: 10.1038/nplants.2016.205.
    IF=13.297(2019)

    PMID: 28005066

    Sci Adv. 2018 Oct 24;4(10): eaat6994.
    doi: 10.1126/sciadv.aat6994.
    IF=12.804(2019)

    PMID: 30417089
    我们的产品现已经出口到下面的研究机构与大学,并且还在增涨
  • Georgia Institute of Technology (USA)
  • Texas A&M University (USA)
  • Center for protein Engineering (CIP) (Belgium)
  • Nanjing University of Chinese Medicine (China)
  • Universita' Degli Studi Di Cagliari (Italy)
  • Shanghai Institute of Organic Chemistry (China)
  • Periyar University (India)
  • Korea Institute of Oriental Medicine (Korea)
  • Monash University (Australia)
  • MTT Agrifood Research Finland (Finland)
  • University of Vigo (Spain)
  • Kamphaengphet Rajabhat University (Thailand)
  • Heidelberg University (Germany)
  • Medical University of South Carolina (USA)
  • More...
  • 国外学术期刊发表的引用ChemFaces产品的部分文献
  • University of Limpopo2016, 1-237
  • Nutr Res Pract.2020, 14(3):203-217.
  • Kor. J. Pharmacogn.2016, 47(1):62-72
  • Sci Rep.2023, 13(1):14594.
  • Tropical Journal of Pharmaceutical Research 2021, 20(6):1165-1170.
  • JLiquid Chromatography & Related Tech.2021, 10826076.
  • J Asian Nat Prod Res.2019, 5:1-17
  • Braz J Med Biol Res. 2016, 49(7)
  • Acta Chromatographica2021, 00960.
  • Pharmacogn J.2022, 14(2):350-357
  • Int J Biol Macromol.2020, 169:342-351
  • Food Engineering Progress2019, 23(3)209-216
  • Microchemical Journal2022, 182: 107874.
  • Front Pharmacol.2021, 12:635510.
  • Fitoterapia.2022, 105141.
  • The Malaysian journal of pathology2019, 41(3):243-251
  • Phytomedicine.2019, 58:152893
  • J Agric Food Chem.2021, 69(11):3496-3510.
  • Genes (Basel).2021, 12(7):1024.
  • J Ethnopharmacol.2017, 198:87-90
  • Int J Pharm.2022, 618:121636.
  • Wageningen University & Research2018, January 2018
  • Planta Medica International2022, 9(01):e108-e115.
  • ...
  • 生物活性
    Description: Quercetin-3-O-glucuronide is a potent stilbene oxidase inhibitor, it has antioxidant, anti-atherogenic, and anti-inflammatory activities. Quercetin-3-O-glucuronide significantly improves Alzheimer's disease (AD)-type deficits in hippocampal formation basal synaptic transmission and long-term potentiation, possibly through mechanisms involving the activation of the c-Jun N-terminal kinases and the mitogen-activated protein kinase signaling pathways. Quercetin-3-O-glucuronide is equally effective in inhibiting ROS-associated inflammation and ameliorating insulin resistant endothelial dysfunction by beneficial regulation of IRS-1 function.
    Targets: ROS | JNK | MAPK | C/EBPβ | IRS-1
    In vitro:
    PLoS One. 2015 May 14;10(5):e0126481.
    Antimicrobial Air Filters Using Natural Euscaphis japonica Nanoparticles.[Pubmed: 25974109]
    Controlling bioaerosols has become more important with increasing participation in indoor activities. Treatments using natural-product nanomaterials are a promising technique because of their relatively low toxicity compared to inorganic nanomaterials such as silver nanoparticles or carbon nanotubes.
    METHODS AND RESULTS:
    In this study, antimicrobial filters were fabricated from natural Euscaphis japonica nanoparticles, which were produced by nebulizing E. japonica extract. The coated filters were assessed in terms of pressure drop, antimicrobial activity, filtration efficiency, major chemical components, and cytotoxicity. Pressure drop and antimicrobial activity increased as a function of nanoparticle deposition time (590, 855, and 1150 μg/cm2(filter) at 3-, 6-, and 9-min depositions, respectively). In filter tests, the antimicrobial efficacy was greater against Staphylococcus epidermidis than Micrococcus luteus; ~61, ~73, and ~82% of M. luteus cells were inactivated on filters that had been coated for 3, 6, and 9 min, respectively, while the corresponding values were ~78, ~88, and ~94% with S. epidermidis. Although statistically significant differences in filtration performance were not observed between samples as a function of deposition time, the average filtration efficacy was slightly higher for S. epidermidis aerosols (~97%) than for M. luteus aerosols (~95%). High-performance liquid chromatography (HPLC) and electrospray ionization-tandem mass spectrometry (ESI/MS) analyses confirmed that the major chemical compounds in the E. japonica extract were 1(ß)-O-galloyl pedunculagin, quercetin-3-O-glucuronide, and kaempferol-3-O-glucoside. In vitro cytotoxicity and disk diffusion tests showed that E. japonica nanoparticles were less toxic and exhibited stronger antimicrobial activity toward some bacterial strains than a reference soluble nickel compound, which is classified as a human carcinogen.
    CONCLUSIONS:
    This study provides valuable information for the development of a bioaerosol control system that is environmental friendly and suitable for use in indoor environments.
    Arch Biochem Biophys . 2014 Sep 1;557:18-27.
    Quercetin-3-O-glucuronide inhibits noradrenaline-promoted invasion of MDA-MB-231 human breast cancer cells by blocking β₂-adrenergic signaling[Pubmed: 24929186]
    Abstract Endogenous catecholamines such as adrenaline (A) and noradrenaline (NA) are released from the adrenal gland and sympathetic nervous system during exposure to stress. The adrenergic system plays a central role in stress signaling, and excessive stress was found to be associated with increased production of reactive oxygen species (ROS). Overproduction of ROS induces oxidative damage in tissues and causes the development of diseases such as cancer. In this study, we investigated the effects of quercetin-3-O-glucuronide (Q3G), a circulating metabolite of quercetin, which is a type of natural flavonoid, on the catecholamine-induced β2-adrenergic receptor (β2-AR)-mediated response in MDA-MB-231 human breast cancer cells expressing β2-AR. Treatment with A or NA at concentrations above 1μM generated significant levels of ROS, and NA treatment induced the gene expression of heme oxygenase-1 (HMOX1), and matrix metalloproteinase-2 (MMP-2) and -9 (MMP9). Inhibitors of p38 MAP kinase (SB203580), cAMP-dependent protein kinase (PKA) (H-89), activator protein-1 (AP-1) transcription factor (SR11302), and NF-κB and AP-1 (Tanshinone IIA) decreased MMP2 and MMP9 gene expression. NA also enhanced cAMP induction, RAS activation and phosphorylation of ERK1/2. These results suggested that the cAMP-PKA, MAPK, and ROS-NF-κB pathways are involved in β2-AR signaling. Treatment with 0.1μM Q3G suppressed ROS generation, cAMP and RAS activation, phosphorylation of ERK1/2 and the expression of HMOX1, MMP2, and MMP9 genes. Furthermore, Q3G (0.1μM) suppressed invasion of MDA-MB-231 breast cancer cells and MMP-9 induction, and inhibited the binding of [(3)H]-NA to β2-AR. These results suggest that Q3G may function to suppress invasion of breast cancer cells by controlling β2-adrenergic signaling, and may be a dietary chemopreventive factor for stress-related breast cancer.
    制备储备液(仅供参考)
    1 mg 5 mg 10 mg 20 mg 25 mg
    1 mM 2.0903 mL 10.4515 mL 20.903 mL 41.806 mL 52.2575 mL
    5 mM 0.4181 mL 2.0903 mL 4.1806 mL 8.3612 mL 10.4515 mL
    10 mM 0.209 mL 1.0452 mL 2.0903 mL 4.1806 mL 5.2258 mL
    50 mM 0.0418 mL 0.209 mL 0.4181 mL 0.8361 mL 1.0452 mL
    100 mM 0.0209 mL 0.1045 mL 0.209 mL 0.4181 mL 0.5226 mL
    * Note: If you are in the process of experiment, it's need to make the dilution ratios of the samples. The dilution data of the sheet for your reference. Normally, it's can get a better solubility within lower of Concentrations.
    部分图片展示
    产品名称 产品编号 CAS编号 分子式 = 分子量 位单 联系QQ
    Heteronoside; Heteronoside CFN97413 852638-61-0 C36H38O20 = 790.7 5mg QQ客服:215959384
    白麻苷,槲皮素-3-O-槐二糖苷; Quercetin-3-O-sophoroside CFN90630 18609-17-1 C27H30O17 = 626.51 20mg QQ客服:1457312923
    槲皮素-3-O-葡萄糖基(1→2)半乳糖苷; Quercetin 3-glucosyl-(1->2)-galactoside CFN95649 95043-15-5 C27H30O17 = 626.5 10mg QQ客服:2159513211
    槲皮素 3-O-[2-O-(6-O-E-阿魏酰基)-beta-D-吡喃葡萄糖基]-beta-D-吡喃半乳糖苷; Quercetin 3-O-[2-O-(6-O-E-feruloyl)-beta-D-glucopyranosyl]-beta-D-galactopyranoside CFN92085 448948-20-7 C37H38O20 = 802.7 5mg QQ客服:1413575084
    槲皮素3-O-芸香糖苷; Quercetin-3-o-rutinose CFN92447 949926-49-2 C27H30O16 = 610.5 5mg QQ客服:1457312923
    槲皮素3-O-洋槐糖苷; Quercetin 3-O-robinobioside CFN98861 52525-35-6 C27H30O16 = 610.5 5mg QQ客服:3257982914
    槲皮素-3-O-[4-O-反式-咖啡酰基-alpha-L-鼠李糖-(1→6)-beta-D-半乳糖苷]; Quercetin 3-Caffeylrobinobioside CFN95151 957110-26-8 C36H36O19 = 772.7 5mg QQ客服:1413575084
    芦丁; Rutin CFN99642 153-18-4 C27H30O16 = 610.5 20mg QQ客服:3257982914
    曲克芦丁; Troxerutin CFN93196 7085-55-4 C33H42O19 = 742.7 20mg QQ客服:3257982914
    槲皮素-3-龙胆二糖甙; Quercetin-3-gentiobioside CFN93585 7431-83-6 C27H30O17 = 626.5 20mg QQ客服:3257982914

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