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  • 中药标准品生产商,产品定制服务
  • 秦皮苷; 白蜡树苷

    Fraxin

    秦皮苷; 白蜡树苷
    产品编号 CFN99747
    CAS编号 524-30-1
    分子式 = 分子量 C16H18O10 = 370.32
    产品纯度 >=98%
    物理属性 Powder
    化合物类型 Coumarins
    植物来源 The barks of Fraxinus brngeana DC.
    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
    秦皮苷; 白蜡树苷 CFN99747 524-30-1 10mg QQ客服:215959384
    秦皮苷; 白蜡树苷 CFN99747 524-30-1 20mg QQ客服:215959384
    秦皮苷; 白蜡树苷 CFN99747 524-30-1 50mg QQ客服:215959384
    秦皮苷; 白蜡树苷 CFN99747 524-30-1 100mg QQ客服:215959384
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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
  • Complutense University of Madrid (Spain)
  • Leibniz Institute of Plant Biochemistry (Germany)
  • University of Melbourne (Australia)
  • Mendel University in Brno (Czech Republic)
  • University of Eastern Finland (Finland)
  • National Cancer Institute (USA)
  • Massachusetts General Hospital (USA)
  • University of the Basque Country (Spain)
  • University of Maryland School of Medicine (USA)
  • Johannes Gutenberg University Mainz (JGU) (Germany)
  • Almansora University (Egypt)
  • Martin Luther University of Halle-Wittenberg (Germany)
  • Ateneo de Manila University (Philippines)
  • Research Unit Molecular Epigenetics (MEG) (Germany)
  • More...
  • 国外学术期刊发表的引用ChemFaces产品的部分文献
  • Int J Mol Sci.2019, 20(16):E4015
  • Eur J Pharmacol.2021, 899:174010.
  • Vojnosanit Pregl2016, 75(00):391-391
  • Exp Biol Med (Maywood).2019, 244(16):1463-1474
  • J Appl Biol Chem2021, 64(3):245-251.
  • LWT-Food Science and Technology2017, 75:488-496
  • Heliyon2020, 6(6):e04337.
  • Nutr Cancer.2023, 75(1):376-387.
  • J Nat Prod.2015, 78(6):1339-4
  • Food Chem Toxicol.2023, 176:113785.
  • ACS Chem Biol.2019, 14(5):873-881
  • Biol Pharm Bull.2020, 43(10):1534-1541.
  • Antibiotics.2022, 11(4), 510.
  • Molecules.2019, 24(6):E1177
  • Journal of Ginseng Research2021, 25 November
  • Int J Mol Sci.2021, 22(2):770.
  • Appl. Sci.2022, 12(17), 8646.
  • LWT2020, 126:109313
  • Org Biomol Chem.2017, 15(31):6483-6492
  • Pharmacol Rep.2017, 69(6):1224-1231
  • J Anal Methods Chem.2022, 2022:2229500.
  • Phytochem Anal.2024, pca.3319.
  • Int J Mol Sci.2019, 20(14):E3538
  • ...
  • 生物活性
    Description: Fraxin possesses a variety of bioactivities such as anti-inflammatory, antioxidant, analgesic, antimicrobial, antiviral, immunomodulatory, anti-hyperuricemia and diuresis. Fraxin enhances urate excretion partly by inhibiting mURAT1 or mGLUT9 in kidney of hyperuricemic mice.
    Targets: GLUT | mURAT1 | mOAT1 | mOCT1
    In vitro:
    Exp Mol Med. 2005 Oct 31;37(5):436-46.
    Natural compounds,fraxin and chemicals structurally related to fraxin protect cells from oxidative stress.[Pubmed: 16264268]
    Coumarins comprise a group of natural phenolic compounds found in a variety of plant sources. In view of the established low toxicity, relative cheapness, presence in the diet and occurrence in various herbal remedies of coumarins, it appears prudent to evaluate their properties and applications further.
    METHODS AND RESULTS:
    The purpose of this study is to investigate cellular protective activity of coumarin compound, fraxin extracted from Weigela florida var. glabbra, under oxidative stress, to identify genes expressed differentially by fraxin and to compare antioxidative effect of fraxin with its structurally related chemicals. Of the coumarins, protective effects of fraxin against cytotoxicity induced by H2O2 were examined in human umbilical vein endothelial cells (HUVECs). Fraxin showed free radical scavenging effect at high concentration (0.5 mM) and cell protective effect against H2O2-mediated oxidative stress. Fraxin recovered viability of HUVECs damaged by H2O2-treatment and reduced the lipid peroxidation and the internal reactive oxygen species level elevated by H2O2 treatment. Differential display reverse transcription-PCR revealed that fraxin upregulated antiapoptotic genes (clusterin and apoptosis inhibitor 5) and tumor suppressor gene (ST13). Based on structural similarity comparing with fraxin, seven chemicals, fraxidin methyl ether (29.4% enhancement of viability), prenyletin (26.4%), methoxsalen (20.8%), diffratic acid (19.9%), rutoside (19.1%), xanthyletin (18.4%), and kuhlmannin (18.2%), enhanced more potent cell viability in the order in comparison with fraxin, which showed only 9.3% enhancement of cell viability.
    CONCLUSIONS:
    These results suggest that fraxin and fraxin-related chemicals protect HUVECs from oxidative stress.
    In vivo:
    J Nat Prod. 2006 May;69(5):755-7.
    Metabolic fate of fraxin administered orally to rats.[Pubmed: 16724835]

    METHODS AND RESULTS:
    Naturally occurring fraxin (1) was administered orally to rats to investigate its metabolism. Urinary metabolites were analyzed by three-dimensional HPLC, and fraxetin-7-O-sulfate (2), fraxetin-7-O-beta-glucuronide (3), fraxetin (4), 6,7,8-trihydroxycoumarin (5), and fraxidin (6) were isolated. Fraxin (1) was extensively metabolized to 4, which was partly metabolized to 5 in a rat fecal suspension after incubation for 24 h. Urinary excretion of 4 and 5 in rats administered orally with 1 was substantially reduced when the rats were treated with antibiotics to suppress their intestinal flora. Incubation of 1 with a rat liver S-9 mixture yielded 6.
    CONCLUSIONS:
    These results suggest that hydrolysis and demethylation of 1 are performed by intestinal microflora, while methylation occurs in the liver.
    Eur J Pharmacol. 2011 Sep;666(1-3):196-204.
    Protective effects of cortex fraxini coumarines against oxonate-induced hyperuricemia and renal dysfunction in mice.[Pubmed: 21620826]
    The aim of the present study was to investigate the effects of cortex Fraxini coumarines esculetin, esculin, fraxetin and Fraxin on renal dysfunction and expression abnormality of renal organic ion transporters in hyperuricemic animals.
    METHODS AND RESULTS:
    Mice were orally given 250 mg/kg oxonate for seven consecutive days to induce hyperuricemia and renal dysfunction. After 1h of oxonate induction daily, animals were orally treated with esculetin, esculin, fraxetin and Fraxin at 20 and 40 mg/kg, respectively. Esculetin, esculin, fraxetin and Fraxin significantly decreased serum urate, creatinine and blood urea nitrogen levels and increased urine urate and creatinine excretion in hyperuricemic mice. Esculetin and esculin up-regulated expressions of renal organic anion transporter 1 (mOAT1), organic cation and carnitine transporters (mOCT1-2 and mOCTN1-2), but failed to affect renal glucose transporter 9 (mGLUT9) and urate transporter 1 (mURAT1) in this model. Fraxetin specifically inhibited renal mURAT1, while Fraxin extensively interacted with renal mGLUT9, mURAT1, mOAT1 and mOCT1 in hyperuricemic mice. Furthermore, esculetin, fraxetin and Fraxin increased mABCG2 mRNA expression and decreased its protein levels in renal apical membrane in hyperuricemic mice.
    CONCLUSIONS:
    These results indicate that esculetin and esculin have beneficial effects on hyperuricemia and renal dysfunction, resulting in restoration of mOAT1, mOCT1-2 and mOCTN1-2, and fraxetin and Fraxin enhance urate excretion partly by inhibiting mURAT1 or mGLUT9 in kidney of hyperuricemic mice. Regulation of mABCG2 by cortex Fraxini coumarines may be partly contributed to their beneficial actions. This study provides an evidence to support clinical therapeutic effects of cortex Fraxini coumarines on hyperuricemia with renal dysfunction.
    制备储备液(仅供参考)
    1 mg 5 mg 10 mg 20 mg 25 mg
    1 mM 2.7004 mL 13.5018 mL 27.0037 mL 54.0073 mL 67.5092 mL
    5 mM 0.5401 mL 2.7004 mL 5.4007 mL 10.8015 mL 13.5018 mL
    10 mM 0.27 mL 1.3502 mL 2.7004 mL 5.4007 mL 6.7509 mL
    50 mM 0.054 mL 0.27 mL 0.5401 mL 1.0801 mL 1.3502 mL
    100 mM 0.027 mL 0.135 mL 0.27 mL 0.5401 mL 0.6751 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
    秦皮素; Fraxetin CFN99113 574-84-5 C10H8O5 = 208.17 20mg QQ客服:1457312923
    秦皮苷; 白蜡树苷; Fraxin CFN99747 524-30-1 C16H18O10 = 370.32 20mg QQ客服:2159513211
    异秦皮啶; Isofraxidin CFN90181 486-21-5 C11H10O5 = 222.19 20mg QQ客服:2159513211
    异嗪皮啶7-O-beta-D-葡萄糖苷; Calycanthoside CFN98764 483-91-0 (16845-16-2) C17H20O10 = 384.3 10mg QQ客服:215959384
    秦皮素啶; Fraxidin CFN98860 525-21-3 C11H10O5 = 222.2 10mg QQ客服:1413575084
    6,7,8-三甲氧基香豆素; 白蜡树素; 6,7,8-Trimethoxycoumarin CFN97024 6035-49-0 C12H12O5 = 236.2 20mg QQ客服:1413575084
    Artemicapin C; Artemicapin C CFN70339 334007-19-1 C10H6O5 = 206.2 5mg QQ客服:2159513211

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