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  • 香兰素; 香草醛; 3-甲氧基-4-羟基苯甲醛

    Vanillin

    香兰素; 香草醛; 3-甲氧基-4-羟基苯甲醛
    产品编号 CFN90463
    CAS编号 121-33-5
    分子式 = 分子量 C8H8O3 = 152.14
    产品纯度 >=98%
    物理属性 Powder
    化合物类型 Phenols
    植物来源 The roots of Beta vulgaris
    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
    香兰素; 香草醛; 3-甲氧基-4-羟基苯甲醛 CFN90463 121-33-5 10mg QQ客服:2056216494
    香兰素; 香草醛; 3-甲氧基-4-羟基苯甲醛 CFN90463 121-33-5 20mg QQ客服:2056216494
    香兰素; 香草醛; 3-甲氧基-4-羟基苯甲醛 CFN90463 121-33-5 50mg QQ客服:2056216494
    香兰素; 香草醛; 3-甲氧基-4-羟基苯甲醛 CFN90463 121-33-5 100mg QQ客服:2056216494
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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
  • Heinrich-Heine-University Düsseldorf (Germany)
  • Monash University Sunway Campus (Malaysia)
  • Massachusetts General Hospital (USA)
  • Kyushu University (Japan)
  • Univerzita Karlova v Praze (Czech Republic)
  • University Medical Center Mainz (Germany)
  • Agricultural Research Organization (ARO) (Israel)
  • Uniwersytet Jagielloński w Krakowie (Poland)
  • University of Vigo (Spain)
  • Medizinische Universit?t Wien (Austria)
  • Almansora University (Egypt)
  • Nicolaus Copernicus Uniwersity (Poland)
  • Chiang Mai University (Thailand)
  • University of Brasilia (Brazil)
  • More...
  • 国外学术期刊发表的引用ChemFaces产品的部分文献
  • Acta Edulis Fungi2020, 27(02):63-76.
  • Pharmaceutics.2021, 13(2):187.
  • Exp Parasitol.2017, 183:160-166
  • Nat Commun.2019, 10(1):2745
  • J Pharmaceutical Research Int.2021, 33(41A):275-284.
  • Oncol Rep.2021, 46(1):143.
  • Biorxiv.2020, doi: 10.1101.
  • Processes 2021, 9(5),894.
  • Natural Product Communications2020, doi: 10.1177.
  • Life Sci.2022, 311(Pt A):121157.
  • Antioxidants2022, 11(2),234.
  • J Agric Food Chem.2020, 68(43):12164-12172.
  • Molecules.2019, 24(20):3755
  • Bioorg Med Chem.2018, 26(14):4201-4208
  • Asian J Beauty Cosmetol2022, 20(2):183-191
  • J Integr Plant Biol.2023, 13564.
  • Lab Chip.2018, 18(6):971-978
  • Exp Parasitol.2015, 153:160-4
  • Toxicol In Vitro.2023, 86:105521.
  • J.Food Processing & Preservation2022, jfpp.16666
  • J Pharmaceut Biomed2020, 182:113110
  • Molecules.2019, 24(23):E4303
  • Front Immunol.2018, 9:2091
  • ...
  • 生物活性
    Description: Vanillin is a single molecule extracted from vanilla beans and also a popular odor used widely in perfume, food and medicine.Vanillin can reversibly and non-competitively inhibit the cellulase activity at appropriate concentrations and the value of IC50 was estimated to be 30 g/L.Vanillin protects KSC from UVB irradiation and its effects may occur through the suppression of downstream step of MDM2 in UVB irradiation-induced p53 activation. Vanillin also inhibits yeast growth and fermentation.
    Targets: Chk | p53 | p38MAPK | JNK | Mdm2 | NADPH-oxidase
    In vitro:
    Food Chem Toxicol. 2014 Jan;63:30-7.
    Vanillin protects human keratinocyte stem cells against ultraviolet B irradiation.[Pubmed: 24184596]
    Ultraviolet-B (UVB) irradiation is one of major factors which induce cellular damages in the epidermis.
    METHODS AND RESULTS:
    We investigated protective effects and mechanisms of vanillin, a main constituent of vanilla beans, against UVB-induced cellular damages in keratinocyte stem cells (KSC). Here, vanillin significantly attenuated UVB irradiation-induced cytotoxicity. The vanillin effects were also demonstrated by the results of the senescence-associated β-galactosidase and alkaline comet assays. In addition, vanillin induced production of pro-inflammatory cytokines. Attempts to elucidate a possible mechanism underlying the vanillin-mediated effects revealed that vanillin significantly reduced UVB-induced phosphorylation of ataxia telangiectasia mutated (ATM), serine threonine kinase checkpoint kinase 2 (Chk2), tumor suppressor protein 53 (p53), p38/mitogen-activated protein kinase (p38), c-Jun N-terminal kinase/stress-activated protein kinase (JNK), S6 ribosomal protein (S6RP), and histone 2A family member X (H2A.X). UVB-induced activation of p53 luciferase reporter was also significantly inhibited by vanillin. In addition, while ATM inhibitor had no effect on the vanillin effects, mouse double minute 2 homolog (MDM2) inhibitor significantly attenuated suppressive effects of vanillin on UVB-induced activation of p53 reporter in KSC.
    CONCLUSIONS:
    Taken together, these findings suggest that vanillin protects KSC from UVB irradiation and its effects may occur through the suppression of downstream step of MDM2 in UVB irradiation-induced p53 activation.
    J Biosci Bioeng. 2014 Sep;118(3):263-9.
    Importance of glucose-6-phosphate dehydrogenase (G6PDH) for vanillin tolerance in Saccharomyces cerevisiae.[Pubmed: 24725964]
    Vanillin is derived from lignocellulosic biomass and, as one of the major biomass conversion inhibitors, inhibits yeast growth and fermentation. Vanillin was recently shown to induce the mitochondrial fragmentation and formation of mRNP granules such as processing bodies and stress granules in Saccharomyces cerevisiae. Furfural, another major biomass conversion inhibitor, also induces oxidative stress and is reduced in an NAD(P)H-dependent manner to its less toxic alcohol derivative. Therefore, the pentose phosphate pathway (PPP), through which most NADPH is generated, plays a role in tolerance to furfural. Although vanillin also induces oxidative stress and is reduced to vanillyl alcohol in a NADPH-dependent manner, the relationship between vanillin and PPP has not yet been investigated.
    METHODS AND RESULTS:
    In the present study, we examined the importance of glucose-6-phosphate dehydrogenase (G6PDH), which catalyzes the rate-limiting NADPH-producing step in PPP, for yeast tolerance to vanillin. The growth of the null mutant of G6PDH gene (zwf1Δ) was delayed in the presence of vanillin, and vanillin was efficiently reduced in the culture of wild-type cells but not in the culture of zwf1Δ cells. Furthermore, zwf1Δ cells easily induced the activation of Yap1, an oxidative stress responsive transcription factor, mitochondrial fragmentation, and P-body formation with the vanillin treatment, which indicated that zwf1Δ cells were more susceptible to vanillin than wild type cells.
    CONCLUSIONS:
    These findings suggest the importance of G6PDH and PPP in the response of yeast to vanillin.
    Food Chem Toxicol . 2016 Oct;96:62-9.
    Vanillin attenuates negative effects of ultraviolet A on the stemness of human adipose tissue-derived mesenchymal stem cells[Pubmed: 27470612]
    Abstract Ultraviolet A (UVA) irradiation induces various changes in cell biology. The objective of this study was to determine the effect of vanillin on UVA irradiation-induced damages in the stemness properties of human adipose tissue-derived mesenchymal stem cells (hAMSCs). UVA-antagonizing mechanisms of vanillin were also examined. The results revealed that vanillin attenuated UVA-induced reduction of the proliferative potential and stemness of hAMSCs evidenced by increased proliferative activity in BrdU incorporation assay and upregulation of stemness-related genes (OCT4, NANOG and SOX2) in response to vanillin treatment. UVA-induced reduction in mRNA level of hypoxia-inducible factor (HIF)-1α was significantly recovered by vanillin. In addition, the antagonizing effect of vanillin on UVA was found to be mediated by reduced production of PGE2 through inhibiting JNK and p38 MAPK. Taken together, these findings showed that vanillin could improve the reduced stemness of hAMSCs induced by UVA. The effect of vanillin is mediated by upregulating HIF-1α via inhibiting PGE2-cAMP signaling. Therefore, vanillin might be used as an antagonizing agent to mitigate the effects of UVA. Keywords: HIF; Human adipose tissue-derived mesenchymal stem cells; PGE(2); Stemness gene; UVA toxicity; Vanillin.
    In vivo:
    Psychiatry Res . 2015 Feb 28;225(3):509-14.
    Vanillin-induced amelioration of depression-like behaviors in rats by modulating monoamine neurotransmitters in the brain[Pubmed: 25595338]
    Abstract Olfaction plays an important role in emotions in our daily life. Pleasant odors are known to evoke positive emotions, inducing relaxation and calmness. The beneficial effects of vanillin on depressive model rats were investigated using a combination of behavioral assessments and neurotransmitter measurements. Before and after chronic stress condition (or olfactory bulbectomy), and at the end of vanillin or fluoxetine treatment, body weight, immobility time on the forced swimming test and sucrose consumption in the sucrose consumption test were measured. Changes in these assessments revealed the characteristic phenotypes of depression in rats. Neurotransmitters were measured using ultrahigh-performance liquid chromatography. Our results indicated that vanillin could alleviate depressive symptoms in the rat model of chronic depression via the olfactory pathway. Preliminary analysis of the monoamine neurotransmitters revealed that vanillin elevated both serotonin and dopamine levels in brain tissue. These results provide important mechanistic insights into the protective effect of vanillin against chronic depressive disorder via olfactory pathway. This suggests that vanillin may be a potential pharmacological agent for the treatment of major depressive disorder. Keywords: Aromatherapy; Chronic unpredictable mild stress; Corticosterone; Major depressive disorder; Olfactory pathway; Ultrahigh performance liquid chromatography.
    制备储备液(仅供参考)
    1 mg 5 mg 10 mg 20 mg 25 mg
    1 mM 6.5729 mL 32.8645 mL 65.7289 mL 131.4579 mL 164.3223 mL
    5 mM 1.3146 mL 6.5729 mL 13.1458 mL 26.2916 mL 32.8645 mL
    10 mM 0.6573 mL 3.2864 mL 6.5729 mL 13.1458 mL 16.4322 mL
    50 mM 0.1315 mL 0.6573 mL 1.3146 mL 2.6292 mL 3.2864 mL
    100 mM 0.0657 mL 0.3286 mL 0.6573 mL 1.3146 mL 1.6432 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
    4-甲氧基苯甲醛; 对甲氧基苯甲醛; 大茴香醛; Anisic aldehyde CFN90476 123-11-5 C8H8O2 = 136.14 20mg QQ客服:1413575084
    豆腐果苷; 豆腐果素; Helicid CFN99957 80154-34-3 C13H16O7 = 284.26 20mg QQ客服:2159513211
    原儿茶醛; 原二茶醛; 茶酚甲醛; 茶醛; 3,4-二羟基苯甲醛; 3,4-Dihydroxybenzaldehyde CFN99450 139-85-5 C7H6O3 = 138.1 20mg QQ客服:2056216494
    香兰素; 香草醛; 3-甲氧基-4-羟基苯甲醛; Vanillin CFN90463 121-33-5 C8H8O3 = 152.14 20mg QQ客服:1457312923
    异香兰素; 3-羟基-4-甲氧基苯甲醛; 异香草醛; Isovanillin CFN90358 621-59-0 C8H8O3 = 152.15 20mg QQ客服:215959384
    藜芦醛; 3,4-二甲氧基苯甲醛; Veratraldehyde CFN99315 120-14-9 C9H10O3 = 166.2 20mg QQ客服:1457312923
    3,5-二羟基苯甲醛; 3,5-Dihydroxybenzaldehyde CFN90111 26153-38-8 C7H6O3 = 138.12 5mg QQ客服:215959384
    2,5-二羟基苯甲醛; 2,5-Dihydroxybenzaldehyde CFN99307 1194-98-5 C7H6O3 = 138.1 20mg QQ客服:1457312923
    2,4,5-三甲氧基苯甲醛; 2,4,5-Trimethoxybenzaldehyde CFN98680 4460-86-0 C10H12O4 = 196.2 20mg QQ客服:2159513211
    2-苯基乙醛; Phenylacetaldehyde CFN93158 122-78-1 C8H8O = 120.2 20mg QQ客服:2056216494

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