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Microbial cell factories, ISSN 1475-2859, 2017, Volume 16, Issue 1, pp. 109 - 14
Background: Acetic acid bacteria (AAB) are widely applied in food, bioengineering and medicine fields... 
Working mechanisms | Aspartic acid | Glutamate | Acid stress resistance enhancement | Acetobacter pasteurianus | BACTERIA | ESCHERICHIA-COLI | INTRACELLULAR PH | ACETIC-ACID | GLUCONOBACTER-OXYDANS | GENOME SEQUENCE | PROFILE | BIOTECHNOLOGY & APPLIED MICROBIOLOGY | AMINO-ACIDS | FERMENTATION | OPERON | Glutamic Acid - pharmacology | Oxidation-Reduction | Acetobacter - drug effects | Fermentation | Acetobacter - metabolism | Proteomics | Stress, Physiological - drug effects | Acetobacter - growth & development | NADP | Acetic Acid - metabolism | Fatty Acids - metabolism | Pentose Phosphate Pathway | Aspartic Acid - pharmacology | Glutathione | Phosphates | Ammonia | Drug resistance in microorganisms | Unsaturated fatty acids | Aspartate | Bacteria | Nucleic acids | Acetic acid | Sugars | Monosaccharides | Bioengineering | Salts | Cytotoxicity | Glucose | Vinegar | Osmotic stress | Proteins | Cell growth | Synthesis | Fluidity | Acid resistance | Damage | Deoxyribonucleic acid--DNA | Stress concentration | Stability | Ethanol | Cider | Nutrient concentrations | Metabolism | Survival | Fatty acids | Equilibrium | Glutamic acid | Oxidative stress | Amino acids | Optimization | Biological effects | E coli | Phosphate | Cell cycle | pH | Acetic acid bacteria | Hydrogen ion concentration | Food | Pentose phosphate | Cell survival | Cloning | Acid production | Nitrogen | Medicine | Deamination | Pentose phosphate pathway | Intracellular | Integrity
Journal Article
Science (American Association for the Advancement of Science), ISSN 1095-9203, 2017, Volume 356, Issue 6336, pp. 438 - 442
Journal Article
Nucleic acids and molecular biology, ISSN 0933-1891, 1987
Journal
Nature materials, ISSN 1476-4660, 2016, Volume 15, Issue 4, pp. 366 - 370
Journal Article
PloS one, ISSN 1932-6203, 2014, Volume 9, Issue 11, p. e112945
...), the neuroprotectants, kynurenic acid (KYNA) and picolinic acid (PIC), the excitotoxin, quinolinic acid (QUIN... 
QUINOLINIC ACID | INHIBITION | METABOLISM | AMINOTRANSFERASE | MULTIDISCIPLINARY SCIENCES | INDOLEAMINE 2,3-DIOXYGENASE | T-CELL | TUMORAL IMMUNE RESISTANCE | TRYPTOPHAN DEGRADATION | IDO EXPRESSION | BRAIN | Immunohistochemistry | Indoleamine-Pyrrole 2,3,-Dioxygenase - genetics | Indoleamine-Pyrrole 2,3,-Dioxygenase - metabolism | Kynurenic Acid - blood | Gene Expression - drug effects | Humans | Kynurenine - biosynthesis | Brain Neoplasms - physiopathology | Picolinic Acids - blood | Quinolinic Acid - blood | Chromatography, High Pressure Liquid | Glial Fibrillary Acidic Protein - metabolism | Kynurenic Acid - metabolism | Carboxy-Lyases - genetics | Tryptophan - metabolism | Brain Neoplasms - metabolism | Picolinic Acids - metabolism | Antigens, CD - metabolism | Glioma - metabolism | Glioma - genetics | Kynurenine - blood | Tryptophan - blood | Carboxy-Lyases - metabolism | Tumor Cells, Cultured | Astrocytes - drug effects | Disaccharides | Cells, Cultured | Brain Neoplasms - genetics | Biosynthetic Pathways | Reverse Transcriptase Polymerase Chain Reaction | Glucuronates | Tryptophan Oxygenase - metabolism | Tryptophan Oxygenase - genetics | Antigens, Differentiation, Myelomonocytic - metabolism | Quinolinic Acid - metabolism | CD11b Antigen - metabolism | Glioma - physiopathology | Interferon-gamma - pharmacology | Astrocytes - metabolism | Tryptophan | Niacinamide | Methyl aspartate | Enzymes | Metabolites | Gliomas | Neuroprotection | Brain | Brain tumors | Brain cancer | Glioblastoma | Tryptophan 2,3-dioxygenase | Immunity | DNA repair | Picolinic acid | Rodents | Glioma cells | L-Tryptophan | Kynurenic acid | Quinolinic acid | Deoxyribonucleic acid--DNA | Pyridines | Medical research | Hydroxylase | Adenine | Kynurenine-oxoglutarate transaminase | NAD | Acids | γ-Interferon | Nicotinamide adenine dinucleotide | Catabolism | Nicotinamide | Interferon | Tumors | NADPH | Deoxyribonucleic acid | DNA
Journal Article
PloS one, ISSN 1932-6203, 2018, Volume 13, Issue 5, p. e0197613
Consumption of different PUFAs (polyunsaturated fatty acids) can induce functional changes in blood vessels via endothelial cells, which interact with dietary factors in the circulation... 
APOPTOSIS | INFLAMMATION | MULTIDISCIPLINARY SCIENCES | SUBSTRATE STIFFNESS | ARACHIDONIC-ACID | EXPRESSION | N-3 PUFA | Cell Line | Cell Survival - drug effects | Proteoglycans | Endothelial Cells - metabolism | Blood Vessels - metabolism | Humans | Caspase 3 - metabolism | Extracellular Matrix - metabolism | Fatty Acids, Unsaturated - pharmacology | Resting Phase, Cell Cycle | Fatty Acids, Unsaturated - metabolism | Basement Membrane - metabolism | Cell Culture Techniques - methods | Blood Vessels - cytology | Laminin | Endothelial Cells - cytology | Collagen | Blood Vessels - drug effects | DNA - biosynthesis | Cell Proliferation - drug effects | Drug Combinations | Endothelial Cells - drug effects | Type 2 diabetes | Unsaturated fatty acids | DNA synthesis | Genetic aspects | Research | Essential fatty acids | Cell proliferation | Senescence | Polyunsaturated fatty acids | Funding | Bromodeoxyuridine | Smooth muscle | Lipids | Arachidonic acid | Docosahexaenoic acid | Cyclin D1 | Caspase-3 | Cell adhesion & migration | Proteins | Cell growth | Cell cycle | Extracellular matrix | Physiology | Growth factors | Deoxyribonucleic acid--DNA | Food | Muscles | Blood vessels | Caspase | Fatty acids | Low level | Endothelial cells | Linoleic acid | Endothelium | Medicine | DNA biosynthesis | Linolenic acid | Diet | Nitric oxide | Cyclin-dependent kinase inhibitor p27 | Insulin resistance | Cholecystokinin | Eicosapentaenoic acid | Apoptosis | Deoxyribonucleic acid | DNA
Journal Article
Nature immunology, ISSN 1529-2916, 2018, Volume 19, Issue 9, pp. 942 - 953
Journal Article