aica ribonucleotide and Inflammation

aica ribonucleotide has been researched along with Inflammation in 30 studies

Research

Studies (30)

TimeframeStudies, this research(%)All Research%
pre-19900 (0.00)18.7374
1990's2 (6.67)18.2507
2000's3 (10.00)29.6817
2010's23 (76.67)24.3611
2020's2 (6.67)2.80

Authors

AuthorsStudies
Duan, X; Gao, Z; Wu, Y; Xue, F; Yang, N1
Fu, CN; Gao, WS; Qu, YJ; Song, SS; Wei, H; Yue, SW1
Cieslik, KA; Entman, ML; Trial, J1
Hosaka, T; Ishida, H; Kitahara, A; Kondo, T; Morita, N; Murashima, T; Onuma, H; Sumitani, Y; Takahashi, K; Tanaka, T1
Bedard, N; Di Marco, S; Ford, RJ; Gallouzi, IE; Griss, T; Hall, DT; Jones, RG; Ma, JF; Mubaid, S; Omer, A; Pause, A; Sadek, J; Sanchez, BJ; Steinberg, GR; Tremblay, AMK; Wing, SS1
Hu, L; Hu, XF; Li, HP; Li, M; Lin, LX; Liu, WT; Pan, HL; Shu, Y; Xiang, HC; Zhang, RY; Zhao, YL; Zhu, H1
Geisslinger, G; Martin, LM; Möller, M; Niederberger, E; Pierre, S; Russe, OQ; Scholich, K; Weiss, U1
Barroso, E; Coll, T; Gómez-Foix, AM; Palomer, X; Salmerón, E; Salvadó, L; Vázquez-Carrera, M1
Brüne, B; Kemmerer, M; Namgaladze, D; von Knethen, A1
Geisslinger, G; King, TS; Kynast, KL; Möser, CV; Niederberger, E; Russe, OQ; Stephan, H1
Amrutkar, M; Cansby, E; Durán, EN; Mahlapuu, M; Nerstedt, A; Smith, U1
Kamoshita, M; Kubota, S; Miyake, S; Nagai, N; Ozawa, Y; Shimmura, S; Tsubota, K; Tsuda, C; Umezawa, K; Yuki, K1
Botero-Quintero, AM; Darwiche, S; Escobar, DA; Gomez, H; Kautza, BC; Loughran, P; Luciano, J; Rosengart, MR; Zuckerbraun, BS1
Chen, W; Huang, F; Kou, J; Li, J; Liu, B; Liu, K; Ma, XN; Qi, LW; Wang, Y; Wen, X1
Coppa, GF; Khan, MM; Marambaud, P; Mulchandani, N; Nicastro, J; Wang, P; Yang, WL; Zhang, F1
Chen, CC; Chen, HM; Chen, PK; Cheng, YF; Jang, HH; Kao, SH; Kuo, CY; Liang, YJ; Lin, JT; Nong, JY; Young, GH1
Chen, J; Li, XG; Wang, W; Xu, J1
Cheng, XY; Huang, C; Li, J; Li, YY; Yao, HW1
Abraham, E; Liu, G; Lorne, E; Park, YJ; Tsuruta, Y; Zhao, X; Zmijewski, JW1
Andris, F; Baus, E; Denanglaire, S; Flavell, RA; Leo, O; Rongvaux, A; Steuve, J1
Qiu, J; Wang, X; Xia, M; Zhang, Y1
Ishida, S; Kubota, S; Kurihara, T; Miyake, S; Noda, K; Ozawa, Y; Sasaki, M; Tsubota, K; Yuki, K1
Atkins, AR; Coulter, S; Downes, M; Evans, RM; Liddle, C; Rao, R; Sherman, MH; Subramaniam, N; Wilson, C1
He, Y; Qi, L; Shi, H; Wang, X; Xue, B; Yang, Z; Yu, L1
Cheng, S; Hao, J; Ji, G; Jiang, Z; Yang, Q; Zhang, Y; Zhao, X1
Coughlan, K; Moriasi, C; Viollet, B; Wang, Q; Xing, J; Zou, MH1
Giri, S; Nath, N; Singh, AK; Singh, I; Smith, B; Viollet, B1
Cronstein, BN; Naime, D; Ostad, E2
Croce, MA; Davis, KA; Fabian, TC; Proctor, KG; Ragsdale, DN; Trenthem, LL1

Other Studies

30 other study(ies) available for aica ribonucleotide and Inflammation

ArticleYear
AICAR attenuates postoperative abdominal adhesion formation by inhibiting oxidative stress and promoting mesothelial cell repair.
    PloS one, 2022, Volume: 17, Issue:9

    Topics: Aminoimidazole Carboxamide; Animals; Cadherins; Catalase; Hyaluronic Acid; Inflammation; NF-E2-Related Factor 2; Oxidative Stress; Rats; Reactive Oxygen Species; Ribonucleosides; Ribonucleotides; RNA, Messenger; Superoxide Dismutase; Tissue Adhesions; Transforming Growth Factor beta1; Vimentin

2022
Obesity increases neuropathic pain via the AMPK-ERK-NOX4 pathway in rats.
    Aging, 2021, 07-29, Volume: 13, Issue:14

    Topics: Aminoimidazole Carboxamide; AMP-Activated Protein Kinases; Animals; Apoptosis; Butadienes; Diet, High-Fat; Disease Models, Animal; Enzyme Inhibitors; Ganglia, Spinal; Hypoglycemic Agents; Inflammation; Male; MAP Kinase Signaling System; Metformin; NADPH Oxidase 4; Neuralgia; Nitriles; Obesity; Oxidative Stress; Pain Threshold; Phosphorylation; Rats, Wistar; Ribonucleotides; Spinal Cord

2021
Aicar treatment reduces interstitial fibrosis in aging mice: Suppression of the inflammatory fibroblast.
    Journal of molecular and cellular cardiology, 2017, Volume: 111

    Topics: Aging; Aminoimidazole Carboxamide; Animals; Biomarkers; Cell Count; Fibroblasts; Fibrosis; Inflammation; Male; Mice, Inbred C57BL; Myocardium; Ribonucleotides

2017
Novel Mechanisms Modulating Palmitate-Induced Inflammatory Factors in Hypertrophied 3T3-L1 Adipocytes by AMPK.
    Journal of diabetes research, 2018, Volume: 2018

    Topics: 3T3-L1 Cells; Adenylate Kinase; Adipocytes; Aminoimidazole Carboxamide; Animals; Chemokine CCL2; Inflammation; Metformin; Mice; NF-kappa B; Palmitic Acid; Phosphorylation; Ribonucleotides; Signal Transduction; Triglycerides

2018
The AMPK agonist 5-aminoimidazole-4-carboxamide ribonucleotide (AICAR), but not metformin, prevents inflammation-associated cachectic muscle wasting.
    EMBO molecular medicine, 2018, Volume: 10, Issue:7

    Topics: Aminoimidazole Carboxamide; AMP-Activated Protein Kinase Kinases; Animals; Cachexia; Cell Line; Enzyme Activation; Inflammation; Interferon-gamma; Male; Metformin; Mice, Inbred BALB C; Mitochondria; Muscle, Skeletal; Neoplasms, Experimental; Nitric Oxide Synthase Type II; Protein Kinases; Ribonucleotides; Shock, Septic; Tumor Necrosis Factor-alpha

2018
AMPK activation attenuates inflammatory pain through inhibiting NF-κB activation and IL-1β expression.
    Journal of neuroinflammation, 2019, Feb-12, Volume: 16, Issue:1

    Topics: Aminoimidazole Carboxamide; AMP-Activated Protein Kinases; Animals; Anti-Inflammatory Agents; Antigens, CD; Antigens, Differentiation, Myelomonocytic; CX3C Chemokine Receptor 1; Disease Models, Animal; Enzyme Activation; Freund's Adjuvant; Gene Expression Regulation; Hypoglycemic Agents; Inflammation; Interleukin 1 Receptor Antagonist Protein; Interleukin-1beta; Male; Mice; Mice, Inbred C57BL; Mice, Transgenic; NF-kappa B; Pain; Pain Threshold; Ribonucleotides; RNA, Small Interfering; Skin

2019
5-Amino-1-β-D-Ribofuranosyl-Imidazole-4-Carboxamide (AICAR) Reduces Peripheral Inflammation by Macrophage Phenotype Shift.
    International journal of molecular sciences, 2019, Jul-02, Volume: 20, Issue:13

    Topics: Aminoimidazole Carboxamide; Animals; Anti-Inflammatory Agents; Cells, Cultured; Edema; Hyperalgesia; Inflammation; Macrophages; Male; Mice, Inbred C57BL; Ribonucleotides

2019
Oleate prevents saturated-fatty-acid-induced ER stress, inflammation and insulin resistance in skeletal muscle cells through an AMPK-dependent mechanism.
    Diabetologia, 2013, Volume: 56, Issue:6

    Topics: Adenylate Kinase; Aminoimidazole Carboxamide; Animals; Biphenyl Compounds; Cell Line; Cell Nucleus; Chromatography, High Pressure Liquid; Endoplasmic Reticulum; Humans; Inflammation; Insulin Resistance; Lipids; Mice; Muscle Cells; Muscle, Skeletal; NF-kappa B; Oleic Acid; Palmitic Acid; Pyrones; Ribonucleotides; Signal Transduction; Thiophenes

2013
AICAR inhibits PPARγ during monocyte differentiation to attenuate inflammatory responses to atherogenic lipids.
    Cardiovascular research, 2013, Jun-01, Volume: 98, Issue:3

    Topics: Aminoimidazole Carboxamide; AMP-Activated Protein Kinases; Anti-Inflammatory Agents; Atherosclerosis; Cell Differentiation; Cell Line, Tumor; Dose-Response Relationship, Drug; Endoplasmic Reticulum Stress; Enzyme Activation; Enzyme Activators; Gene Expression Regulation; Humans; Inflammation; Interleukin-4; JNK Mitogen-Activated Protein Kinases; Lipoproteins, LDL; Macrophages; Monocytes; Palmitic Acid; Phenotype; PPAR gamma; Ribonucleotides; RNA Interference; RNA, Messenger; Transfection

2013
Activation of the AMP-activated protein kinase reduces inflammatory nociception.
    The journal of pain, 2013, Volume: 14, Issue:11

    Topics: Aminoimidazole Carboxamide; AMP-Activated Protein Kinases; Animals; Behavior, Animal; Enzyme Activation; Hyperalgesia; Inflammation; Male; Metformin; Mice; Mice, Inbred C57BL; Mice, Knockout; Motor Skills; Nociception; Pain Measurement; Ribonucleotides; Rotarod Performance Test

2013
Partial hepatic resistance to IL-6-induced inflammation develops in type 2 diabetic mice, while the anti-inflammatory effect of AMPK is maintained.
    Molecular and cellular endocrinology, 2014, Aug-05, Volume: 393, Issue:1-2

    Topics: Aminoimidazole Carboxamide; AMP-Activated Protein Kinases; Animals; Anti-Inflammatory Agents; Blood Glucose; Blotting, Western; Diabetes Mellitus, Type 2; Diet, High-Fat; Disease Models, Animal; Inflammation; Interleukin-6; Liver; Male; Metformin; Mice; Mice, Inbred C57BL; Real-Time Polymerase Chain Reaction; Ribonucleotides

2014
AMPK-NF-κB axis in the photoreceptor disorder during retinal inflammation.
    PloS one, 2014, Volume: 9, Issue:7

    Topics: Adenylate Kinase; Aminoimidazole Carboxamide; Animals; Electroretinography; Inflammation; Male; Mice; NF-kappa B; Photoreceptor Cells; Retinal Diseases; Rhodopsin; Ribonucleotides; Signal Transduction

2014
Adenosine monophosphate-activated protein kinase activation protects against sepsis-induced organ injury and inflammation.
    The Journal of surgical research, 2015, Volume: 194, Issue:1

    Topics: Aminoimidazole Carboxamide; AMP-Activated Protein Kinases; Animals; Autophagy; Cell Adhesion; Cells, Cultured; Cytokines; Endothelial Cells; Inflammation; Leukocytes; Male; Mice; Mice, Inbred C57BL; Multiple Organ Failure; Ribonucleotides; Sepsis

2015
Pharmacological activation of AMPK prevents Drp1-mediated mitochondrial fission and alleviates endoplasmic reticulum stress-associated endothelial dysfunction.
    Journal of molecular and cellular cardiology, 2015, Volume: 86

    Topics: Aminoimidazole Carboxamide; AMP-Activated Protein Kinases; Animals; Carrier Proteins; Caspase 1; Cell Cycle Proteins; Dynamins; Endoplasmic Reticulum Stress; Endothelium, Vascular; Gene Expression Regulation; Humans; Inflammation; Interleukin-1beta; Mitochondrial Dynamics; Rats; Ribonucleotides; Salicylates; Vasodilation

2015
Stimulation of Brain AMP-Activated Protein Kinase Attenuates Inflammation and Acute Lung Injury in Sepsis.
    Molecular medicine (Cambridge, Mass.), 2015, Jul-30, Volume: 21

    Topics: Acute Lung Injury; Aminoimidazole Carboxamide; AMP-Activated Protein Kinases; Animals; Brain; Cell Survival; Energy Metabolism; Gene Expression Regulation; Humans; Inflammation; Male; Mice; Phosphorylation; Ribonucleotides; Sepsis

2015
Activation of AMP-Activated Protein Kinase by Adenine Alleviates TNF-Alpha-Induced Inflammation in Human Umbilical Vein Endothelial Cells.
    PloS one, 2015, Volume: 10, Issue:11

    Topics: Adenine; Adenine Phosphoribosyltransferase; Aminoimidazole Carboxamide; AMP-Activated Protein Kinases; Cell Adhesion; Cells, Cultured; Enzyme Activation; Gene Expression; Human Umbilical Vein Endothelial Cells; Humans; Inflammation; Monocytes; NF-kappa B; Phosphorylation; Protein Transport; Ribonucleotides; RNA, Small Interfering; Tumor Necrosis Factor-alpha

2015
Anti-inflammatory activities of fenoterol through β-arrestin-2 and inhibition of AMPK and NF-κB activation in AICAR-induced THP-1 cells.
    Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie, 2016, Volume: 84

    Topics: Adrenergic beta-2 Receptor Agonists; Aminoimidazole Carboxamide; AMP-Activated Protein Kinases; Anti-Inflammatory Agents; beta-Arrestin 2; Cell Line, Tumor; Enzyme Activation; Fenoterol; Humans; Inflammation; Inflammation Mediators; Monocytes; NF-kappa B; Phosphorylation; Protein Kinase Inhibitors; Ribonucleotides; RNA Interference; Signal Transduction; Transfection; Tumor Necrosis Factor-alpha

2016
AMP-activated protein kinase reduces inflammatory responses and cellular senescence in pulmonary emphysema.
    Oncotarget, 2017, Apr-04, Volume: 8, Issue:14

    Topics: Aminoimidazole Carboxamide; AMP-Activated Protein Kinases; Animals; Cell Line; Cellular Senescence; Energy Metabolism; Female; Humans; Inflammation; Lipid Metabolism; Lung; Male; Mice; Mice, Inbred C57BL; Pancreatic Elastase; Pulmonary Disease, Chronic Obstructive; Pulmonary Emphysema; Pyrazoles; Pyrimidines; Respiratory Mucosa; Ribonucleotides; Smoking

2017
Activation of AMPK attenuates neutrophil proinflammatory activity and decreases the severity of acute lung injury.
    American journal of physiology. Lung cellular and molecular physiology, 2008, Volume: 295, Issue:3

    Topics: Acute Disease; Aminoimidazole Carboxamide; Animals; Cyclic AMP-Dependent Protein Kinases; Cytokines; Enzyme Activation; Inflammation; Lipopolysaccharides; Lung; Lung Injury; Male; Mice; Mice, Inbred C57BL; Neutrophils; NF-kappa B; Ribonucleotides; Toll-Like Receptor 4

2008
Metabolic stress boosts humoral responses in vivo independently of inflammasome and inflammatory reaction.
    Journal of immunology (Baltimore, Md. : 1950), 2011, Feb-15, Volume: 186, Issue:4

    Topics: Adenosine Triphosphate; Adjuvants, Immunologic; Aminoimidazole Carboxamide; Animals; Carrier Proteins; Cells, Cultured; Immunoglobulin G; Inflammasomes; Inflammation; Mice; Mice, Inbred BALB C; Mice, Inbred C57BL; Mice, Knockout; NLR Family, Pyrin Domain-Containing 3 Protein; Oligomycins; Ribonucleotides; Stress, Physiological; Up-Regulation

2011
AMP-activated protein kinase suppresses endothelial cell inflammation through phosphorylation of transcriptional coactivator p300.
    Arteriosclerosis, thrombosis, and vascular biology, 2011, Volume: 31, Issue:12

    Topics: Aminoimidazole Carboxamide; AMP-Activated Protein Kinases; Aorta; Cell Adhesion; Cells, Cultured; E1A-Associated p300 Protein; Endothelium, Vascular; Gene Expression Regulation; Histone Acetyltransferases; Humans; Inflammation; Monocytes; NF-kappa B; Phosphorylation; Protein Kinase C; Ribonucleotides; Vascular Cell Adhesion Molecule-1

2011
Roles of AMP-activated protein kinase in diabetes-induced retinal inflammation.
    Investigative ophthalmology & visual science, 2011, Nov-25, Volume: 52, Issue:12

    Topics: Administration, Oral; Aminoimidazole Carboxamide; AMP-Activated Protein Kinases; Animals; Blotting, Western; Diabetes Mellitus, Experimental; Diabetic Retinopathy; Down-Regulation; Enzyme-Linked Immunosorbent Assay; Inflammation; Injections, Intraperitoneal; Intercellular Adhesion Molecule-1; Mice; Mice, Inbred C57BL; Phosphorylation; Resveratrol; Retinitis; Ribonucleotides; Sirtuin 1; Stilbenes; Transcription Factor RelA; Vascular Endothelial Growth Factor A

2011
Metformin-mediated Bambi expression in hepatic stellate cells induces prosurvival Wnt/β-catenin signaling.
    Cancer prevention research (Philadelphia, Pa.), 2012, Volume: 5, Issue:4

    Topics: Aminoimidazole Carboxamide; AMP-Activated Protein Kinases; Animals; Apoptosis; beta Catenin; Hepatic Stellate Cells; Humans; Hypoglycemic Agents; Inflammation; Lipopolysaccharides; Male; Membrane Proteins; Metformin; Rats; Rats, Sprague-Dawley; Ribonucleotides; Signal Transduction; Wnt Proteins

2012
The full capacity of AICAR to reduce obesity-induced inflammation and insulin resistance requires myeloid SIRT1.
    PloS one, 2012, Volume: 7, Issue:11

    Topics: Aminoimidazole Carboxamide; Animals; Diet, High-Fat; Glucose; Humans; Inflammation; Insulin; Insulin Resistance; Macrophage-1 Antigen; Mice; Mice, Knockout; Muscle, Skeletal; Myeloid Cells; Obesity; Ribonucleotides; Signal Transduction; Sirtuin 1

2012
Genistein suppresses LPS-induced inflammatory response through inhibiting NF-κB following AMP kinase activation in RAW 264.7 macrophages.
    PloS one, 2012, Volume: 7, Issue:12

    Topics: Adenylate Kinase; Aminoimidazole Carboxamide; Animals; Cell Line; Dose-Response Relationship, Drug; Genistein; Inflammation; Interleukin-6; Lipopolysaccharides; Macrophages; Mice; NF-kappa B; Phosphorylation; Protein Kinase Inhibitors; Pyrazoles; Pyrimidines; Ribonucleotides; Signal Transduction; Tumor Necrosis Factor-alpha

2012
Inhibition of AMP-activated protein kinase accentuates lipopolysaccharide-induced lung endothelial barrier dysfunction and lung injury in vivo.
    The American journal of pathology, 2013, Volume: 182, Issue:3

    Topics: Aminoimidazole Carboxamide; AMP-Activated Protein Kinase Kinases; AMP-Activated Protein Kinases; Animals; Antigens, CD; Blood Vessels; Cadherins; Cattle; cdc42 GTP-Binding Protein; Cell Membrane Permeability; Cells, Cultured; Endothelial Cells; Enzyme Activation; Humans; Inflammation; Lipopolysaccharides; Lung; Lung Injury; Mice; Mice, Inbred C57BL; Myosin Light Chains; p21-Activated Kinases; Phosphoprotein Phosphatases; Phosphorylation; Phosphothreonine; Protein Phosphatase 2C; Protein Serine-Threonine Kinases; rac1 GTP-Binding Protein; Ribonucleotides; Signal Transduction

2013
5-aminoimidazole-4-carboxamide-1-beta-4-ribofuranoside inhibits proinflammatory response in glial cells: a possible role of AMP-activated protein kinase.
    The Journal of neuroscience : the official journal of the Society for Neuroscience, 2004, Jan-14, Volume: 24, Issue:2

    Topics: Active Transport, Cell Nucleus; Aminoimidazole Carboxamide; AMP-Activated Protein Kinases; Animals; Brain; Cell Nucleus; Cells, Cultured; Cytokines; Inflammation; Lipopolysaccharides; Macrophages, Peritoneal; Multienzyme Complexes; Neuroglia; Nitric Oxide; Nitric Oxide Synthase; Nitric Oxide Synthase Type II; Protein Serine-Threonine Kinases; Rats; Rats, Sprague-Dawley; Ribonucleotides; Transcription Factors

2004
The antiinflammatory effects of methotrexate are mediated by adenosine.
    Advances in experimental medicine and biology, 1994, Volume: 370

    Topics: Acyltransferases; Adenosine; Adenosine Deaminase; Aminoimidazole Carboxamide; Animals; Anti-Inflammatory Agents, Non-Steroidal; Carrageenan; Hydroxymethyl and Formyl Transferases; Inflammation; Kinetics; Leukocytes; Methotrexate; Mice; Phosphoribosylaminoimidazolecarboxamide Formyltransferase; Purinergic P1 Receptor Antagonists; Ribonucleotides; Theobromine; Xanthines

1994
The antiinflammatory mechanism of methotrexate. Increased adenosine release at inflamed sites diminishes leukocyte accumulation in an in vivo model of inflammation.
    The Journal of clinical investigation, 1993, Volume: 92, Issue:6

    Topics: Adenosine; Adenosine Deaminase; Aminoimidazole Carboxamide; Animals; Anti-Inflammatory Agents, Non-Steroidal; Carrageenan; Disease Models, Animal; Female; Inflammation; Kinetics; Leukocytes; Methotrexate; Mice; Mice, Inbred BALB C; Purinergic P1 Receptor Antagonists; Ribonucleotides; Spleen; Theobromine; Time Factors

1993
Combination therapy that targets secondary pulmonary changes after abdominal trauma.
    Shock (Augusta, Ga.), 2001, Volume: 15, Issue:6

    Topics: Abdominal Abscess; Abdominal Injuries; Aminoimidazole Carboxamide; Animals; Anti-Inflammatory Agents; Blood Pressure; Capillaries; Disease Models, Animal; Hemodynamics; Inflammation; Lactates; Lung; Lung Injury; Neutrophils; Pulmonary Alveoli; Pulmonary Artery; Resuscitation; Ribonucleotides; Shock, Hemorrhagic; Steroids; Swine

2001