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  • 咖啡醇

    Cafestol

    咖啡醇
    产品编号 CFN93071
    CAS编号 469-83-0
    分子式 = 分子量 C20H28O3 = 316.44
    产品纯度 >=98%
    物理属性 Powder
    化合物类型 Diterpenoids
    植物来源 From Coffea Bean
    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
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    咖啡醇 CFN93071 469-83-0 1mg QQ客服:215959384
    咖啡醇 CFN93071 469-83-0 5mg QQ客服:215959384
    咖啡醇 CFN93071 469-83-0 10mg QQ客服:215959384
    咖啡醇 CFN93071 469-83-0 20mg 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
  • University of Indonesia (Indonesia)
  • Rio de Janeiro State University (Brazil)
  • Universidade Católica Portuguesa (Portugal)
  • University of Vigo (Spain)
  • Chulalongkorn University (Thailand)
  • Kazusa DNA Research Institute (Japan)
  • Indian Institute of Science (India)
  • Nicolaus Copernicus Uniwersity (Poland)
  • Universite de Lille1 (France)
  • University of Wollongong (Australia)
  • University of Bordeaux (France)
  • University of Limpopo (South Africa)
  • University of Lodz (Poland)
  • University of Wisconsin-Madison (USA)
  • More...
  • 国外学术期刊发表的引用ChemFaces产品的部分文献
  • Vietnam J. Chem.2023, 61(3),308-317
  • Industrial Crops and Products2022, 188:115596.
  • Phytochemistry Letters2021, 43:80-87.
  • Mol Neurobiol.2022, 02873-9.
  • J of the Korean Society of Cosmetics and Cosmetology2018, 399-406
  • Institute of Food Science & Technology2021, 45(9).
  • Phytomedicine.2015, 22(4):498-503
  • Plant Pathology2022, 10.1111:ppa.13651.
  • Plants (Basel).2023, 12(1):163.
  • Antioxidants (Basel).2021, 10(11):1831.
  • BMC Complement Altern Med.2018, 18(1):303
  • J Cell Mol Med.2023, 27(10):1423-1435.
  • J Microbiol Biotechnol.2020, 30(2):178-186.
  • Nutrients.2019, 11(6):E1380
  • Molecules.2023, 28(8):3503.
  • Molecules.2020, 25(9):2081.
  • Res Pharm Sci.2023, 18(3):244-261.
  • Phytochemistry Letters2015, 243-247
  • Biomed Pharmacother.2019, 116:108987
  • Horticulture Research2023, uhad259
  • Biosci Rep.2020, 40(8):BSR20201219.
  • Environ Toxicol.2023, tox.23999.
  • Plant Physiol.2024, 194(4):2580-2599.
  • ...
  • 生物活性
    Description: Cafestol has anticarcinogenic, peripheral antinociceptive and anti-inflammatory activities, it inhibits Cyclic-Strain-induced interleukin-8, intercellular adhesion molecule-1, and monocyte chemoattractant protein-1 production in vascular endothelial cells. Cafestol is a novel extracellular signal-regulated kinase inhibitor with AP-1-targeted inhibition of prostaglandin E2 production in lipopolysaccharide-activated macrophages. Cafestol acts as an agonist ligand for both FXR and PXR, and this may contribute to its impact on cholesterol homeostasis. Cafestol has protective effects against the CCl(4)-induced hepatotoxicity, which possibly involve mechanisms related to its ability to block the CYP2E1-mediated CCl(4) bioactivation and free radical scavenging effects. Cafestol has antidiabetic activity, it increases glucose-stimulated insulin secretion in vitro and increases glucose uptake in human skeletal muscle cells. Cafestol also has a weak inhibitory effect on osteoclastogenesis and promotes osteoblast differentiation.
    Targets: HO-1 | IL Receptor | p38MAPK | COX | PGE | P450 (e.g. CYP17) | NF-kB | ERK | MEK | AP-1 | FAK | Nrf2 | IkB | IKK
    In vitro:
    Oxid Med Cell Longev. 2018 Apr 30;2018:7861518.
    Cafestol Inhibits Cyclic-Strain-Induced Interleukin-8, Intercellular Adhesion Molecule-1, and Monocyte Chemoattractant Protein-1 Production in Vascular Endothelial Cells.[Pubmed: 29854096]
    Moderate coffee consumption is inversely associated with cardiovascular disease mortality; however, mechanisms underlying this causal effect remain unclear. Cafestol, a diterpene found in coffee, has various properties, including an anti-inflammatory property. This study investigated the effect of Cafestol on cyclic-strain-induced inflammatory molecule secretion in vascular endothelial cells.
    METHODS AND RESULTS:
    Cells were cultured under static or cyclic strain conditions, and the secretion of inflammatory molecules was determined using enzyme-linked immunosorbent assay. The effects of Cafestol on mitogen-activated protein kinases (MAPK), heme oxygenase-1 (HO-1), and sirtuin 1 (Sirt1) signaling pathways were examined using Western blotting and specific inhibitors. Cafestol attenuated cyclic-strain-stimulated intercellular adhesion molecule-1 (ICAM-1), monocyte chemoattractant protein- (MCP-) 1, and interleukin- (IL-) 8 secretion. Cafestol inhibited the cyclic-strain-induced phosphorylation of extracellular signal-regulated kinase and p38 MAPK. By contrast, Cafestol upregulated cyclic-strain-induced HO-1 and Sirt1 expression. The addition of zinc protoporphyrin IX, sirtinol, or Sirt1 silencing (transfected with Sirt1 siRNA) significantly attenuated Cafestol-mediated modulatory effects on cyclic-strain-stimulated ICAM-1, MCP-1, and IL-8 secretion.
    CONCLUSIONS:
    This is the first study to report that Cafestol inhibited cyclic-strain-induced inflammatory molecule secretion, possibly through the activation of HO-1 and Sirt1 in endothelial cells. The results provide valuable insights into molecular pathways that may contribute to the effects of Cafestol.
    Biol Pharm Bull. 2010;33(1):128-32.
    Cafestol, a coffee-specific diterpene, is a novel extracellular signal-regulated kinase inhibitor with AP-1-targeted inhibition of prostaglandin E2 production in lipopolysaccharide-activated macrophages.[Pubmed: 20045950]
    Coffee is a popular beverage worldwide with various nutritional benefits. Diterpene Cafestol, one of the major components of coffee, contributes to its beneficial effects through various biological activities such as chemopreventive, antitumorigenic, hepatoprotective, antioxidative and antiinflammatory effects.
    METHODS AND RESULTS:
    In this study, we examined the precise molecular mechanism of the antiinflammatory activity of Cafestol in terms of prostaglandin E(2) (PGE(2)) production, a critical factor involved in inflammatory responses. Cafestol inhibited both PGE(2) production and the mRNA expression of cyclooxygenase (COX)-2 from lipopolysaccharide (LPS)-treated RAW264.7 cells. Interestingly, this compound strongly decreased the translocation of c-Jun into the nucleus and AP-1 mediated luciferase activity. In kinase assays using purified extracellular signal-regulated kinase 2 (ERK2) or immunoprecipitated ERK prepared from LPS-treated cells in the presence or absence of Cafestol, it was found that this compound can act as an inhibitor of ERK2 but not of ERK1 and mitogen-activated protein kinase kinase 1 (MEK 1).
    CONCLUSIONS:
    Therefore our data suggest that Cafestol may be a novel ERK inhibitor with AP-1-targeted inhibitory activity against PGE(2) production in LPS-activated RAW264.7 cells.
    Biofactors. 2015 Jul-Aug;41(4):222-31.
    Cafestol has a weaker inhibitory effect on osteoclastogenesis than kahweol and promotes osteoblast differentiation.[Pubmed: 26154488]
    Bone homeostasis is regulated by a balance between osteoclast (OCL)-mediated bone resorption and osteoblast (OBL)-mediated bone formation. Thus, developing a compound that simultaneously inhibits OCL function and promotes OBL function would be useful as a new medical therapy for bone diseases.
    METHODS AND RESULTS:
    Here, we examined the effects of Cafestol, a coffee diterpene, on the differentiation of OCLs and OBLs. Cafestol prevented OCL formation in a dose-dependent manner and suppressed the bone-resorbing activity of OCLs. Interestingly, the viability of OCLs treated with 10-50 μM Cafestol was significantly higher than that of untreated cells. At the molecular level, Cafestol markedly decreased RANKL-induced phosphorylation of extracellular signal-regulated kinase (Erk) and inhibitor of nuclear factor kappa B alpha (IκBα). Compared to kahweol, another coffee-specific diterpene, the inhibitory effects of Cafestol were milder on OCL differentiation, and Cafestol and kahweol showed different characteristics in induction of the phase ΙΙ antioxidant enzymes and sensitivities in nuclear factor-erythroid 2-related factor 2 (Nrf2)-deficient BMMs. In addition to inhibiting OCLs, Cafestol enhanced the differentiation of osteoblastic cells by increasing the mRNA levels of differentiation markers.
    CONCLUSIONS:
    Thus, Cafestol inhibits OCL differentiation and promotes OBL differentiation, suggesting that Cafestol may be a novel agent for bone diseases.
    In vivo:
    Food Chem Toxicol. 2007 Nov;45(11):2118-25.
    Hepatoprotective and antioxidant effects of the coffee diterpenes kahweol and cafestol on carbon tetrachloride-induced liver damage in mice.[Pubmed: 17590492 ]
    The hepatoprotective effects of kahweol and Cafestol, coffee-specific diterpenes, on the carbon tetrachloride (CCl(4))-induced liver damage as well as the possible mechanisms involved in these protections were investigated.
    METHODS AND RESULTS:
    Pretreatment with kahweol and Cafestol prior to the administration of CCl(4) significantly prevented the increase in the serum levels of hepatic enzyme markers (alanine aminotransferase and aspartate aminotransferase) and reduced oxidative stress, such as reduced glutathione content and lipid peroxidation, in the liver in a dose-dependent manner. The histopathological evaluation of the livers also revealed that kahweol and Cafestol reduced the incidence of liver lesions induced by CCl(4). Treatment of the mice with kahweol and Cafestol also resulted in a significant decrease in the cytochrome P450 2E1 (CYP2E1), the major isozyme involved in CCl(4) bioactivation, specific enzyme activities, such as p-nitrophenol and aniline hydroxylation. Kahweol and Cafestol exhibited antioxidant effects on FeCl(2)-ascorbate induced lipid peroxidation in a mouse liver homogenate, and on superoxide radical scavenging activity.
    CONCLUSIONS:
    These results suggest that the protective effects of kahweol and Cafestol against the CCl(4)-induced hepatotoxicity possibly involve mechanisms related to their ability to block the CYP2E1-mediated CCl(4) bioactivation and free radical scavenging effects.
    J Nat Prod. 2017 Aug 25;80(8):2353-2359.
    Cafestol, a Bioactive Substance in Coffee, Has Antidiabetic Properties in KKAy Mice.[Pubmed: 28763212 ]
    Daily coffee consumption is inversely associated with risk of type-2 diabetes (T2D). Cafestol, a bioactive substance in coffee, increases glucose-stimulated insulin secretion in vitro and increases glucose uptake in human skeletal muscle cells.
    METHODS AND RESULTS:
    We hypothesized that Cafestol can postpone development of T2D in KKAy mice. Forty-seven male KKAy mice were randomized to consume chow supplemented daily with either 1.1 (high), 0.4 (low), or 0 (control) mg of Cafestol for 10 weeks. We collected blood samples for fasting glucose, glucagon, and insulin as well as liver, muscle, and fat tissues for gene expression analysis. We isolated islets of Langerhans and measured insulin secretory capacity. After 10 weeks of intervention, fasting plasma glucose was 28-30% lower in Cafestol groups compared with the control group (p < 0.01). Fasting glucagon was 20% lower and insulin sensitivity improved by 42% in the high-Cafestol group (p < 0.05). Cafestol increased insulin secretion from isolated islets by 75-87% compared to the control group (p < 0.001).
    CONCLUSIONS:
    Our results show that Cafestol possesses antidiabetic properties in KKAy mice. Consequently, Cafestol may contribute to the reduced risk of developing T2D in coffee consumers and has a potential role as an antidiabetic drug.
    制备储备液(仅供参考)
    1 mg 5 mg 10 mg 20 mg 25 mg
    1 mM 3.1602 mL 15.8008 mL 31.6016 mL 63.2031 mL 79.0039 mL
    5 mM 0.632 mL 3.1602 mL 6.3203 mL 12.6406 mL 15.8008 mL
    10 mM 0.316 mL 1.5801 mL 3.1602 mL 6.3203 mL 7.9004 mL
    50 mM 0.0632 mL 0.316 mL 0.632 mL 1.2641 mL 1.5801 mL
    100 mM 0.0316 mL 0.158 mL 0.316 mL 0.632 mL 0.79 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
    鹅掌楸树脂醇 A ; Episyringaresinol CFN96717 51152-20-6 C22H26O8 = 418.44 5mg QQ客服:2056216494
    7-(3-Acetoxy-3-methyl-butyl)-5,9-dihydroxy-8-methoxy-2,2-dimethyl-3,4-dihydro-2H-pyrano[3,2-b]xanthen-6-one; 7-(3-Acetoxy-3-methyl-butyl)-5,9-dihydroxy-8-methoxy-2,2-dimethyl-3,4-dihydro-2H-pyrano[3,2-b]xanthen-6-one CFN91408 26063-98-9 C26H30O8 = 470.5 5mg QQ客服:1457312923
    阿江榄仁素; Arjungenin CFN95039 58880-25-4 C30H48O6 = 504.7 20mg QQ客服:2159513211
    野马追内酯O; Eupalinolide O CFN91839 2170228-67-6 C22H26O8 = 418.4 5mg QQ客服:215959384

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