Works matching DE "GUAIACOL"
Results: 486
Key Odorants in Cured Madagascar Vanilla Beans (Vanilla planiforia) of Differing Bean Quality.
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- Bioscience, Biotechnology & Biochemistry, 2013, v. 77, n. 3, p. 606, doi. 10.1271/bbb.120842
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Simultaneous Analysis of Guaiacol and Vanillin in a Vanilla Extract by Using High-Performance Liquid Chromatography with Electrochemical Detection.
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- Bioscience, Biotechnology & Biochemistry, 2013, v. 77, n. 3, p. 595, doi. 10.1271/bbb.120835
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Formation of 4-Vinyl Guaiacol as an Intermediate in Bioconversion of Ferulic Acid by Schizophyllum commune.
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- Bioscience, Biotechnology & Biochemistry, 2008, v. 72, n. 1, p. 212, doi. 10.1271/bbb.60606
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In vivo antioxidative and neuroprotective effect of 4-Allyl-2-methoxyphenol against chlorpyrifos-induced neurotoxicity in rat brain.
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- Molecular & Cellular Biochemistry, 2014, v. 388, n. 1/2, p. 61, doi. 10.1007/s11010-013-1899-9
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Partial uncompetitive inhibition of horseradish peroxidase by a water-miscible ionic liquid [BMIM][MeSO].
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- Biotechnology Letters, 2011, v. 33, n. 8, p. 1657, doi. 10.1007/s10529-011-0618-4
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Strong substrate-stabilizing effect of a water-miscible ionic liquid [BMIM][BF<sub>4</sub>] in the catalysis of horseradish peroxidase.
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- Biotechnology Letters, 2008, v. 30, n. 3, p. 529, doi. 10.1007/s10529-007-9570-8
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Study of hydrogen-bonded clusters of 2-methoxyphenol–water.
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- Theoretical Chemistry Accounts: Theory, Computation, & Modeling, 2007, v. 118, n. 5/6, p. 947, doi. 10.1007/s00214-007-0378-3
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Does lignin modification affect feeding preference or growth performance of insect herbivores in transgenic silver birch (Betula pendula Roth)?
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- Planta: An International Journal of Plant Biology, 2005, v. 222, n. 4, p. 699, doi. 10.1007/s00425-005-0002-5
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Diarylheptanoids from the Rhizomes of Alpinia officinarum.
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- Helvetica Chimica Acta, 2008, v. 91, n. 1, p. 118, doi. 10.1002/hlca.200890001
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New Studies on [2+3] Cycloadditions of Thermally Generated N-Isopropyl- and N-(4-Methoxyphenyl)-Substituted Azomethine Ylides.
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- Helvetica Chimica Acta, 2004, v. 87, n. 2, p. 496
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Phenylpropanoid glycosides from Conyza japonica.
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- Chemistry of Natural Compounds, 2012, v. 48, n. 5, p. 782, doi. 10.1007/s10600-012-0381-3
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Chemistry and antioxidant activity of phenolic compounds isolated from Alpinia bracteata.
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- Chemistry of Natural Compounds, 2012, v. 48, n. 5, p. 785, doi. 10.1007/s10600-012-0382-2
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Effects of seed priming on growth and antioxidant components of hairy vetch (Vicia villosa) seedlings under chilling stress.
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- Journal of Plant Nutrition, 2019, v. 42, n. 5, p. 428, doi. 10.1080/01904167.2018.1554077
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Guaiacol peroxidase zymography for the undergraduate laboratory.
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- Biochemistry & Molecular Biology Education, 2014, v. 42, n. 5, p. 420, doi. 10.1002/bmb.20809
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Carbonic anhydrase inhibitors: guaiacol and catechol derivatives effectively inhibit certain human carbonic anhydrase isoenzymes (hCA I, II, IX and XII).
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- Journal of Enzyme Inhibition & Medicinal Chemistry, 2015, v. 30, n. 4, p. 586, doi. 10.3109/14756366.2014.956310
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Guaiacol HDO on La‐modified Pt/Al<sub>2</sub>O<sub>3</sub>: Influence of rare‐earth loading.
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- Canadian Journal of Chemical Engineering, 2023, v. 101, n. 10, p. 5772, doi. 10.1002/cjce.24830
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Hydrodeoxygenation of guaiacol over molybdenum-based catalysts: The effect of support and the nature of the active site.
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- Canadian Journal of Chemical Engineering, 2017, v. 95, n. 9, p. 1730, doi. 10.1002/cjce.22819
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Kinetic studies on the liquid-phase catalytic oxidation of 4-methyl guaiacol to vanillin.
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- Canadian Journal of Chemical Engineering, 2017, v. 95, n. 8, p. 1544, doi. 10.1002/cjce.22798
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A Comparative Decolourisation of Rbbr Dye and Guaiacol Degradation by Free and Immobilized Laccase Producing Bacillus Spp.
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- Nature Environment & Pollution Technology, 2015, v. 14, n. 2, p. 319
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- Article
Distribution of Volatile Compounds in Organic Tomato (Lycopersicon esculentum) at Different Ripening Stages.
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- Academic Food Journal / Akademik GIDA, 2013, v. 11, n. 2, p. 6
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The Antioxidant Guaiacol Exerts Fungicidal Activity Against Fungal Growth and Deoxynivalenol Production in Fusarium graminearum.
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- Frontiers in Microbiology, 2021, v. 12, p. 1, doi. 10.3389/fmicb.2021.762844
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Changes in Peroxidase Activity in Bean Suspension Cultures after <em>B. cinerea</em> and Elicitor Treatment.
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- Journal of Phytopathology, 1994, v. 141, n. 3, p. 314, doi. 10.1111/j.1439-0434.1994.tb01475.x
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Phyto-remedial of excessive copper and evaluation of its impact on the metabolic activity of Zea mays.
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- Cereal Research Communications, 2022, v. 50, n. 4, p. 973, doi. 10.1007/s42976-022-00259-0
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Revealing the genetic diversity and population structure in Aegilops crassa and Aegilops cylindrica species using molecular markers and physio-chemical traits.
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- Cereal Research Communications, 2022, v. 50, n. 3, p. 347, doi. 10.1007/s42976-021-00202-9
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Mitigation of Livestock Odors Using Black Light and a New Titanium Dioxide-Based Catalyst: Proof-of-Concept.
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- Atmosphere, 2017, v. 8, n. 6, p. 103, doi. 10.3390/atmos8060103
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Efficient Bio-Oil Production from Coconut Shells Using Parabolic Solar Pyrolysis.
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- International Journal of Sustainable Development & Planning, 2023, v. 18, n. 12, p. 3745, doi. 10.18280/ijsdp.181206
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Localized increases of polyphenol concentration and antioxidant capacity in relation to the differential accumulations of copper and cadmium in roots and in shoots of sunflower.
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- Botany, 2010, v. 88, n. 10, p. 901, doi. 10.1139/B10-063
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Effects of dietary guaiacol on shell biomineralization of juvenile abalone Haliotis discus hannai, Ino.
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- Aquaculture Research, 2008, v. 39, n. 9, p. 954, doi. 10.1111/j.1365-2109.2008.01955.x
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Electrochemical oxidation of some catechol derivatives in the presence of some betadicetone derivatives: mechanistic and thermodynamic study.
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- Journal of the Iranian Chemical Society, 2017, v. 14, n. 4, p. 873, doi. 10.1007/s13738-016-1041-5
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Potential bioactive Vanillin-Schiff base di- and tri-organotin(IV) complexes of 4-((3,5-dimethylphenylimino)methyl)-2-methoxyphenol: synthesis, characterization and biological screenings.
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- Journal of the Iranian Chemical Society, 2014, v. 11, n. 2, p. 297, doi. 10.1007/s13738-013-0301-x
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Filling Some Blanks in a Divergent Approach to Gabosines: Enantioselective Synthesis of (-)-Epiepoxydon, (+)-Phyllostine, (-)-Gabosine D, and (-)-Gabosine E.
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- European Journal of Organic Chemistry, 2016, v. 2016, n. 21, p. 3568, doi. 10.1002/ejoc.201600492
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Practical Synthesis of p- and o-Amino- and Methoxyphenolic Anthraquinones.
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- Angewandte Chemie International Edition, 2015, v. 54, n. 43, p. 12687, doi. 10.1002/anie.201507007
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In Situ Generated Dispersed Catalysts Based on Molybdenum and Tungsten Phosphides in Hydroprocessing of Guaiacol.
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- Petroleum Chemistry, 2022, v. 62, n. 11, p. 1300, doi. 10.1134/S0965544122110019
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Alkylation of Guaiacol with Alcohols on Porous Aromatic Frameworks Modified with Sulfo Groups.
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- Petroleum Chemistry, 2022, v. 62, n. 10, p. 1195, doi. 10.1134/S0965544122100012
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The Effect of Sulfonate Groups in the Structure of Porous Aromatic Frameworks on the Activity of Platinum Catalysts Towards Hydrodeoxygenation of Biofuel Components.
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- Petroleum Chemistry, 2021, v. 61, n. 9, p. 1061, doi. 10.1134/S0965544121090115
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Pt and Ru Catalysts Based on Porous Aromatic Frameworks for Hydrogenation of Lignin Biofuel Components.
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- Petroleum Chemistry, 2021, v. 61, n. 7, p. 711, doi. 10.1134/S0965544121070045
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Ruthenium- and Palladium-Containing Catalysts Based on Mesoporous Polymer Nanospheres in Guaiacol Hydrogenation.
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- Petroleum Chemistry, 2020, v. 60, n. 10, p. 1136, doi. 10.1134/S0965544120100102
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A Nanospherical Mesoporous Ruthenium-Containing Polymer as a Guaiacol Hydrogenation Catalyst.
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- Petroleum Chemistry, 2019, v. 59, n. 12, p. 1300, doi. 10.1134/S096554411912003X
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Comparison of the Effects of 8-Methoxypsoralen (8-MOP) plus UVA (PUVA) on Human Melanocytes in Vitiligo Vulgaris and In Vitro.
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- Journal of Investigative Dermatology, 1992, v. 98, n. 5, p. 734, doi. 10.1111/1523-1747.ep12499936
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Crystal structure of bis(5-methoxy-2-(((2-oxidoethyl)imino)methyl)phenolate-κ³O,N,O′) manganes(IV), C<sub>20</sub>H<sub>22</sub>N<sub>2</sub>O<sub>6</sub>Mn.
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- Zeitschrift für Kristallographie / New Crystal Structures, 2019, v. 234, n. 3, p. 503, doi. 10.1515/ncrs-2018-0495
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Crystal structure of chlorido-(6,6′-((1,2-phenylenebis(azanylylidene))bis(methanylylidene))bis(3-methoxyphenolato)-κ<sup>4</sup>O,N,N′,O′)iron(III), C<sub>22</sub>H<sub>18</sub>ClN<sub>2</sub>FeO<sub>4</sub>.
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- Zeitschrift für Kristallographie / New Crystal Structures, 2019, v. 234, n. 3, p. 475, doi. 10.1515/ncrs-2018-0480
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Crystal structure of (Z)-2-((adamantan-1-ylimino)methyl)-5-methoxyphenol, C<sub>18</sub>H<sub>23</sub>NO<sub>2</sub>.
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- Zeitschrift für Kristallographie / New Crystal Structures, 2019, v. 234, n. 2, p. 313, doi. 10.1515/ncrs-2018-0366
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Crystal structure of 2-((E)-((4-((E)-1-(hydroxyimino)ethyl)phenyl)iminio)methyl)-5-methoxyphenolate, C<sub>16</sub>H<sub>16</sub>N<sub>2</sub>O<sub>3</sub>.
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- Zeitschrift für Kristallographie / New Crystal Structures, 2018, v. 233, n. 5, p. 773, doi. 10.1515/ncrs-2017-0384
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Crystal structure of 2-( bis(4-methoxyphenyl)amino)-2-oxoacetic acid, C<sub>16</sub>H<sub>15</sub>NO<sub>5</sub>.
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- Zeitschrift für Kristallographie / New Crystal Structures, 2017, v. 232, n. 2, p. 333, doi. 10.1515/ncrs-2016-0325
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Crystal structure of 2-(4-methoxyphenyl)-2,3-dihydro-1 H-perimidine, C<sub>18</sub>H<sub>16</sub>N<sub>2</sub>O.
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- Zeitschrift für Kristallographie / New Crystal Structures, 2016, v. 231, n. 1, p. 133, doi. 10.1515/ncrs-2015-0059
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Crystal structure of 2-amino-N-(4-methoxyphenyl)benzamide, C<sub>14</sub>H<sub>14</sub>N<sub>2</sub>O<sub>2</sub>.
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- Zeitschrift für Kristallographie / New Crystal Structures, 2016, v. 231, n. 1, p. 203, doi. 10.1515/ncrs-2015-0089
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Crystal structure of (2,5-dihydroxyphenyl)-(4-hydroxy-3,5-dimethoxyphenyl)methanone, C<sub>15</sub>H<sub>14</sub>O<sub>6</sub>.
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- Zeitschrift für Kristallographie / New Crystal Structures, 2016, v. 231, n. 1, p. 205, doi. 10.1515/ncrs-2015-0090
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Crystal structure of (2,5-dihydroxyphenyl)-(4-methoxyphenyl)methanone, C<sub>14</sub>H<sub>12</sub>O<sub>4</sub>.
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- Zeitschrift für Kristallographie / New Crystal Structures, 2016, v. 231, n. 1, p. 213, doi. 10.1515/ncrs-2015-0094
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- Article
Eugenol Triggers Different Pathobiological Effects on Human Oral Mucosal Fibroblasts.
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- Journal of Dental Research, 1994, v. 73, n. 5, p. 1050, doi. 10.1177/00220345940730050601
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Effect of Eugenol on Respiration and Division in Human Pulp, Mouse Fibroblasts, and Liver Cells in vitro.
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- Journal of Dental Research, 1984, v. 63, n. 11, p. 1262, doi. 10.1177/00220345840630110101
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