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Journal Article
Molecules (Basel, Switzerland), ISSN 1420-3049, 2018, Volume 23, Issue 7, p. 1506
MD simulation | Antimycobacterial agent | Siderophore | Chorismate | Consensus docking | Mycobactin | Iron | Biochemistry & Molecular Biology | Physical Sciences | Chemistry | Life Sciences & Biomedicine | Chemistry, Multidisciplinary | Science & Technology | Antitubercular Agents - chemical synthesis | Antitubercular Agents - chemistry | Bacterial Proteins - chemistry | Substrate Specificity | Structure-Activity Relationship | Enzyme Inhibitors - chemical synthesis | Lyases - metabolism | Thermodynamics | Chorismic Acid - metabolism | Enzyme Inhibitors - chemistry | Lyases - genetics | Mycobacterium tuberculosis - chemistry | Protein Interaction Domains and Motifs | Lyases - antagonists & inhibitors | Chorismic Acid - chemistry | Chromans - chemistry | Recombinant Proteins - metabolism | Bacterial Proteins - antagonists & inhibitors | Catalytic Domain | Gene Expression | Protein Structure, Secondary | Bacterial Proteins - genetics | Recombinant Proteins - chemistry | Recombinant Proteins - genetics | Amino Acid Motifs | Mycobacterium tuberculosis - enzymology | Lyases - chemistry | Protein Binding | Bacterial Proteins - metabolism | Chromans - chemical synthesis | Molecular Docking Simulation | Kinetics | Salicylate synthase | Salicylic acid | Enzymes | Evaluation | Biosynthesis | Lead compounds | Structure-activity relationships | Optimization | Inhibitors | Molecular modelling | Tuberculosis | Modelling | Chelates | Index Medicus | chorismate | consensus docking | iron | antimycobacterial agent | mycobactin | siderophore
Journal Article
Free radical biology & medicine, ISSN 0891-5849, 09/2017, Volume 110, pp. 92 - 101
2″-O-β-D-xylosylvitexin | Cytotoxicity | NMR | Cellular antioxidant activity | Artocarpus heterophyllus | Biochemistry & Molecular Biology | Endocrinology & Metabolism | Life Sciences & Biomedicine | Science & Technology | Plant Extracts - chemistry | Artocarpus - chemistry | Antioxidants - chemistry | Apigenin - isolation & purification | Humans | Apigenin - chemistry | Dose-Response Relationship, Drug | Biphenyl Compounds - antagonists & inhibitors | Chromans - pharmacology | MCF-7 Cells | Quercetin - isolation & purification | Hydroxyl Radical - chemistry | Picrates - chemistry | Glycosides - isolation & purification | Flavonoids - pharmacology | Biphenyl Compounds - chemistry | Hydroxyl Radical - antagonists & inhibitors | Glycosides - chemistry | Plant Leaves - chemistry | Cell Survival - drug effects | Quercetin - chemistry | Antineoplastic Agents, Phytogenic - chemistry | Antioxidants - pharmacology | Glycosides - pharmacology | Hep G2 Cells | Picrates - antagonists & inhibitors | Quercetin - pharmacology | Antioxidants - isolation & purification | Monosaccharides - pharmacology | Cell Proliferation - drug effects | Flavonoids - isolation & purification | Antineoplastic Agents, Phytogenic - pharmacology | Flavonoids - chemistry | Monosaccharides - chemistry | Apigenin - pharmacology | Antineoplastic Agents, Phytogenic - isolation & purification | Monosaccharides - isolation & purification | Antioxidants | Nuclear magnetic resonance spectroscopy | Analysis | Isoflavones | Flavonoids | Flavones | Bioflavonoids | Index Medicus
Journal Article
Journal of pharmaceutical sciences, ISSN 0022-3549, 03/2014, Volume 103, Issue 3, pp. 945 - 951
toxicology | poly E polyphenone E | bioavailability | antioxidants | green tea polyphenols | PCL poly (ε-caprolactone) | GTPs green tea polyphenols | in vitro/in vivo correlations | polymeric drug delivery systems | preclinical pharmacokinetics | Physical Sciences | Chemistry | Life Sciences & Biomedicine | Pharmacology & Pharmacy | Chemistry, Medicinal | Chemistry, Multidisciplinary | Science & Technology | Camellia sinensis - chemistry | Cyclodextrins - metabolism | Molecular Weight | Antioxidants - chemistry | Antioxidants - metabolism | Drug Implants | Catechin - administration & dosage | Polyethylene Glycols - chemistry | Caproates - chemistry | Chromans - metabolism | Plant Extracts - metabolism | Anticarcinogenic Agents - administration & dosage | Surface Properties | Cyclodextrins - chemistry | Drug Compounding | Antineoplastic Agents, Phytogenic - metabolism | Catechin - metabolism | Propylene Glycols - metabolism | Solubility | Rats | Rats, Inbred ACI | Polyphenols - pharmacokinetics | Polyphenols - chemistry | Biodegradable Plastics - metabolism | Propylene Glycols - chemistry | Transition Temperature | Catechin - chemistry | Biodegradable Plastics - chemistry | Plant Extracts - chemistry | Anticarcinogenic Agents - metabolism | Anticarcinogenic Agents - pharmacokinetics | Polyphenols - metabolism | Plant Extracts - administration & dosage | Antineoplastic Agents, Phytogenic - administration & dosage | Female | Caproates - metabolism | Chromans - administration & dosage | Antineoplastic Agents, Phytogenic - pharmacokinetics | Chromans - chemistry | Lactones - chemistry | Plant Leaves - chemistry | Polyethylene Glycols - metabolism | Antineoplastic Agents, Phytogenic - chemistry | Lactones - metabolism | Animals | Anticarcinogenic Agents - chemistry | Plant Extracts - pharmacokinetics | Antioxidants - administration & dosage | Catechin - analogs & derivatives | Antioxidants - pharmacokinetics | Catechin - pharmacokinetics | Polyphenols - administration & dosage | Antioxidants | Drugs | Drug delivery systems | Chemotherapy | Analysis | Polyphenols | Pharmacists | Green tea | Vehicles | Cancer | Index Medicus
Journal Article