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  • 细交链孢菌酮酸

    Tenuazonic acid

    细交链孢菌酮酸
    产品编号 CFN00139
    CAS编号 610-88-8
    分子式 = 分子量 C10H15NO3 = 197.23
    产品纯度 >=98%
    物理属性 Powder
    化合物类型 Alkaloids
    植物来源 From Alternaria alternata.
    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
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    产品名称 产品编号 CAS编号 包装 QQ客服
    细交链孢菌酮酸 CFN00139 610-88-8 1mg QQ客服:2159513211
    细交链孢菌酮酸 CFN00139 610-88-8 5mg QQ客服:2159513211
    细交链孢菌酮酸 CFN00139 610-88-8 10mg QQ客服:2159513211
    细交链孢菌酮酸 CFN00139 610-88-8 20mg QQ客服:2159513211
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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 Malaya (Malaysia)
  • Uniwersytet Medyczny w ?odzi (Poland)
  • Kyoto University (Japan)
  • Imperial College London (United Kingdom)
  • Michigan State University (USA)
  • University of Dicle (Turkey)
  • Medizinische Universit?t Wien (Austria)
  • Universitas islam negeri Jakarta (Indonesia)
  • Shanghai Institute of Organic Chemistry (China)
  • Osmania University (India)
  • Universitas Airlangga (Indonesia)
  • Heidelberg University (Germany)
  • Nicolaus Copernicus Uniwersity (Poland)
  • Pennsylvania State University (USA)
  • More...
  • 国外学术期刊发表的引用ChemFaces产品的部分文献
  • National Academy Science Letters2023, s40009.
  • Int J Mol Sci.2017, 18(5)
  • Universidade Estadual Paulista2017, 42785
  • Environ Toxicol.2021, doi: 10.1002
  • Anal Bioanal Chem. 2016, 408(15)
  • Nutrients.2020, 12(12):3638.
  • Separations2021, 8(1), 1.
  • Evid Based Complement Alternat Med.2020, 2020:1970349.
  • Biochem Biophys Res Commun.2020, 527(4):889-895.
  • Appl. Sci.2020, 10(5),1713.
  • Molecules.2022, 27(7):2093.
  • Int J Cosmet Sci.2019, 41(1):12-20
  • Applied Biological Chemistry 2022, 65,5(2022).
  • Molecules.2021, 26(6):1635.
  • Dis Markers.2022, 2022:2380879.
  • Molecules2022, 27(14),4462
  • Front Cell Infect Microbiol.2018, 8:292
  • Front Pharmacol.2021, 12:607403.
  • Chemistry of Natural Compounds2018, 204-206
  • Foods.2021, 10(11):2627.
  • Appl Biol Chem2019, 62:46
  • J Nat Med.2020, 74(1):65-75
  • Nat Prod Commun.2017, 12(5):771-778
  • ...
  • 生物活性
    Description: Tenuazonic acid, an active component in the A. alternata toxin.Tenuazonic acid exhibits a strong inhibition in photosystem II (PSII) activity, it causes cell necrosis of host-plants by oxidative damage from chloroplast-mediated ROS eruption, and enhances the plant's resistances against rose aphids.
    Targets: ATPase | ROS
    In vitro:
    J Zhejiang Univ Sci B. 2015 Apr;16(4):264-74.
    Alternaria toxin-induced resistance in rose plants against rose aphid (Macrosiphum rosivorum): effect of tenuazonic acid.[Pubmed: 25845360]
    Many different types of toxins are produced by the fungus, Alternaria alternata (Fr.) Keissler. Little is known, however, regarding the influence of these toxins on insects.
    METHODS AND RESULTS:
    In this study, we investigated the toxin-induced inhibitory effects of the toxin produced by A. alternata on the rose aphid, Macrosiphum rosivorum, when the toxin was applied to leaves of the rose, Rosa chinensis. The results demonstrated that the purified crude toxin was non-harmful to rose plants and rose aphids, but had an intensive inhibitory effect on the multiplication of aphids. The inhibitory index against rose aphids reached 87.99% when rose plants were sprayed with the toxin solution at a low concentration. Further results from bioassays with aphids and high performance liquid chromatography (HPLC) analyses demonstrated that tenuazonic acid (TeA) was one of the most important resistance-related active components in the crude toxin. The content of TeA was 0.1199% in the crude toxin under the HPLC method. Similar to the crude toxin, the inhibitory index of pure TeA reached 83.60% 15 d after the rose plants were sprayed with pure TeA solution at the lower concentration of 0.060 μg/ml, while the contents of residual TeA on the surface and in the inner portion of the rose plants were only 0.04 and 0.00 ng/g fresh weight of TeA-treated rose twigs, respectively, 7 d after the treatment.
    CONCLUSIONS:
    Our results show that TeA, an active component in the A. alternata toxin, can induce the indirect plant-mediated responses in rose plants to intensively enhance the plant's resistances against rose aphids, and the results are very helpful to understand the plant-mediated interaction between fungi and insects on their shared host plants.
    In vivo:
    Anal Bioanal Chem. 2013 May;405(12):4149-58.
    Determination of tenuazonic acid in human urine by means of a stable isotope dilution assay.[Pubmed: 23397093]

    METHODS AND RESULTS:
    The content of Tenuazonic acid in human urine was determined by a stable isotope dilution assay (SIDA) that was recently developed for the analysis of food commodities and extensively re-validated for urine matrix in this study. Linearity of the response curve was proven between molar ratios n(labeled standard)/n(analyte) of 0.02-100. The limits of detection and determination were 0.2 and 0.6 μg/L, respectively. The mean recovery of the stable isotope dilution assay was 102 ± 3 % in the range between 1.0 and 100 μg/L. Interassay precision was 6.7 % (relative standard deviation of three triplicate analyses of a human urine sample during 3 weeks). The method was applied to two studies dealing with urinary excretion of Tenuazonic acid: In the first study, Tenuazonic acid was quantified in the 24-h urine of six volunteers from Germany (three female, three male) in a concentration range of 1.3-17.3 μg/L or 2.3-10.3 ng/mg(-1) creatinine, respectively. In the second study, two volunteers (one female, one male) ingested 30 μg Tenuazonic acid by consumption of naturally contaminated whole meal sorghum infant cereals and tomato juice, respectively. The urinary excretion of the ingested Tenuazonic acid was 54-81 % after 6 h, depending on matrix and volunteer. After 24 h, 87-93 % of the ingested amount of Tenuazonic acid was excreted, but the fate of the remaining about 10 % is open.
    CONCLUSIONS:
    Thus, it is not possible to exclude potential health hazards for the consumer, completely.
    Plant Physiol Biochem. 2014 Nov;84:10-21.
    In vivo assessment of effect of phytotoxin tenuazonic acid on PSII reaction centers.[Pubmed: 25240106]
    Tenuazonic acid (TeA), a phytotoxin produced by the fungus Alternaria alternata isolated from diseased croftonweed (Ageratina adenophora), exhibits a strong inhibition in photosystem II (PSII) activity.
    METHODS AND RESULTS:
    In vivo chlorophyll fluorescence transients of the host plant croftonweed, show that the dominant effect of TeA is not on the primary photochemical reaction but on the biochemical reaction after QA. The most important action site of TeA is the QB site on the PSII electron-acceptor side, blocking electron transport beyond QA(-) by occupying the QB site in the D1 protein. However, TeA does not affect the antenna pigments, the energy transfer from antenna pigment molecules to reaction centers (RCs), and the oxygen-evolving complex (OEC) at the donor side of PSII. TeA severely inactivated PSII RCs. The fraction of non-QA reducing centers and non-QB reducing centers show a time- and concentration-dependent linear increase. Conversely, the amount of active QA or QB reducing centers declined sharply in a linear way.
    CONCLUSIONS:
    The fraction of non-QB reducing centers calculated from data of fluorescence transients is close to the number of PSII RCs with their QB site filled by TeA. An increase of the step-J level (VJ) in the OJIP fluorescence transients attributed to QA(-) accumulation due to TeA bound to the QB site is a typical characteristic response of the plants leaf with respect to TeA penetration.
    制备储备液(仅供参考)
    1 mg 5 mg 10 mg 20 mg 25 mg
    1 mM 5.0702 mL 25.3511 mL 50.7022 mL 101.4045 mL 126.7556 mL
    5 mM 1.014 mL 5.0702 mL 10.1404 mL 20.2809 mL 25.3511 mL
    10 mM 0.507 mL 2.5351 mL 5.0702 mL 10.1404 mL 12.6756 mL
    50 mM 0.1014 mL 0.507 mL 1.014 mL 2.0281 mL 2.5351 mL
    100 mM 0.0507 mL 0.2535 mL 0.507 mL 1.014 mL 1.2676 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
    Apiodionene; Apiodionene CFN00109 142808-38-6 C13H15NO3 = 233.27 5mg QQ客服:215959384
    Bripiodionene; Bripiodionene CFN00111 190265-70-4 C15H20N2O4 = 292.33 5mg QQ客服:2056216494
    Nortenuazonic acid; Nortenuazonic acid CFN00127 16820-44-3 C9H13NO3 = 183.21 5mg QQ客服:1457312923
    细交链孢菌酮酸; Tenuazonic acid CFN00139 610-88-8 C10H15NO3 = 197.23 5mg QQ客服:1413575084
    巴比妥钠; Sodium barbital CFN00448 144-02-5 C8H11N2NaO3 = 206.17 5mg QQ客服:2159513211

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