cyc 202 has been researched along with glutamic acid in 13 studies
Studies (cyc 202) | Trials (cyc 202) | Recent Studies (post-2010) (cyc 202) | Studies (glutamic acid) | Trials (glutamic acid) | Recent Studies (post-2010) (glutamic acid) |
---|---|---|---|---|---|
979 | 7 | 393 | 41,757 | 452 | 12,876 |
Protein | Taxonomy | cyc 202 (IC50) | glutamic acid (IC50) |
---|---|---|---|
Chain A, GLUTAMATE RECEPTOR SUBUNIT 2 | Rattus norvegicus (Norway rat) | 0.821 | |
Chain A, Glutamate Receptor Subunit 2 | Rattus norvegicus (Norway rat) | 0.821 | |
Chain B, Glutamate Receptor Subunit 2 | Rattus norvegicus (Norway rat) | 0.821 | |
Metabotropic glutamate receptor 8 | Homo sapiens (human) | 0.0057 | |
Glutamate receptor ionotropic, NMDA 2D | Homo sapiens (human) | 0.07 | |
Glutamate receptor ionotropic, NMDA 3B | Homo sapiens (human) | 0.07 | |
Glutamate receptor 1 | Rattus norvegicus (Norway rat) | 0.5885 | |
Glutamate receptor 2 | Rattus norvegicus (Norway rat) | 0.5885 | |
Glutamate receptor 3 | Rattus norvegicus (Norway rat) | 0.5885 | |
Glutamate receptor 4 | Rattus norvegicus (Norway rat) | 0.5885 | |
Glutamate receptor ionotropic, kainate 1 | Rattus norvegicus (Norway rat) | 0.38 | |
Glutamate receptor ionotropic, NMDA 1 | Rattus norvegicus (Norway rat) | 0.1533 | |
Glutamate receptor ionotropic, kainate 2 | Rattus norvegicus (Norway rat) | 0.38 | |
Glutamate receptor 1 | Homo sapiens (human) | 0.613 | |
Glutamate receptor 2 | Homo sapiens (human) | 0.613 | |
Glutamate receptor 3 | Homo sapiens (human) | 0.613 | |
Glutamate receptor ionotropic, kainate 3 | Rattus norvegicus (Norway rat) | 0.38 | |
Excitatory amino acid transporter 1 | Homo sapiens (human) | 207 | |
Glutamate receptor 4 | Homo sapiens (human) | 0.613 | |
Glutamate receptor ionotropic, NMDA 2A | Rattus norvegicus (Norway rat) | 0.1533 | |
Glutamate receptor ionotropic, NMDA 2B | Rattus norvegicus (Norway rat) | 0.1533 | |
Glutamate receptor ionotropic, NMDA 2C | Rattus norvegicus (Norway rat) | 0.1533 | |
Glutamate receptor ionotropic, kainate 4 | Rattus norvegicus (Norway rat) | 0.38 | |
Glutamate receptor ionotropic, NMDA 1 | Homo sapiens (human) | 0.07 | |
Glutamate receptor ionotropic, NMDA 2A | Homo sapiens (human) | 0.07 | |
Glutamate receptor ionotropic, NMDA 2B | Homo sapiens (human) | 0.07 | |
Glutamate receptor ionotropic, NMDA 2C | Homo sapiens (human) | 0.07 | |
Glutamate receptor ionotropic, NMDA 2D | Rattus norvegicus (Norway rat) | 0.1533 | |
Glutamate receptor ionotropic, kainate 5 | Rattus norvegicus (Norway rat) | 0.38 | |
Glutamate receptor ionotropic, NMDA 3A | Homo sapiens (human) | 0.07 | |
Glutamate receptor ionotropic, NMDA 3B | Rattus norvegicus (Norway rat) | 0.1533 | |
Glutamate receptor ionotropic, NMDA 3A | Rattus norvegicus (Norway rat) | 0.1533 |
Timeframe | Studies, this research(%) | All Research% |
---|---|---|
pre-1990 | 0 (0.00) | 18.7374 |
1990's | 0 (0.00) | 18.2507 |
2000's | 7 (53.85) | 29.6817 |
2010's | 4 (30.77) | 24.3611 |
2020's | 2 (15.38) | 2.80 |
Authors | Studies |
---|---|
Barnes, JC; Bradley, P; Day, NC; Fourches, D; Reed, JZ; Tropsha, A | 1 |
Li, ST; Matsui, H; Matsushita, M; Moriwaki, A; Ohta, J; Takei, K; Tomizawa, K | 1 |
Hyman, SE; Minassian, R; Nairn, AC; Sgambato, V | 1 |
Chergui, K; Greengard, P; Svenningsson, P | 1 |
Gong, X; Mao, Z; Park, D; Tang, X; Tong, M; Wang, X; Xia, Z | 1 |
Monaco, EA; Vallano, ML | 1 |
Asada, A; Fukunaga, K; Hisanaga, S; Hosokawa, T; Itakura, M; Ohshima, T; Saito, T; Takahashi, M | 1 |
Chen, GD; Chiu, CH; Hsien, MC; Lai, CY; Lee, SD; Liao, JM; Lin, TB; Lu, HT; Peng, HY; Tung, KC | 1 |
Antonucci, L; Edwards, J; Hunce, R; Krucher, NA; Lentine, B; Marallano, V | 1 |
Hernández-Echeagaray, E; Miranda-Barrientos, J; Nieto-Mendoza, E | 1 |
Cardona-Gómez, GP; Palacio-Castañeda, V; Posada-Duque, RA | 1 |
Ai, LQ; Chen, C; Gao, L; Lin, S; Liu, W; Xiao, H; Ye, J; Zhou, Y | 1 |
Konishi, S; Satake, SI | 1 |
13 other study(ies) available for cyc 202 and glutamic acid
Article | Year |
---|---|
Cheminformatics analysis of assertions mined from literature that describe drug-induced liver injury in different species.
Topics: Animals; Chemical and Drug Induced Liver Injury; Cluster Analysis; Databases, Factual; Humans; MEDLINE; Mice; Models, Chemical; Molecular Conformation; Quantitative Structure-Activity Relationship | 2010 |
Cdk5/p35 regulates neurotransmitter release through phosphorylation and downregulation of P/Q-type voltage-dependent calcium channel activity.
Topics: Animals; Calcium; Calcium Channel Blockers; Calcium Channels, P-Type; Calcium Channels, Q-Type; Cyclin-Dependent Kinase 5; Cyclin-Dependent Kinases; Down-Regulation; Electric Stimulation; Enzyme Inhibitors; Excitatory Postsynaptic Potentials; Exocytosis; Glutamic Acid; Hippocampus; In Vitro Techniques; Kinetin; Male; Nerve Tissue Proteins; Neurons; Neurotransmitter Agents; Phosphorylation; Protein Isoforms; Purines; Rats; Rats, Wistar; Roscovitine; Synaptosomes | 2002 |
Regulation of ania-6 splice variants by distinct signaling pathways in striatal neurons.
Topics: Alternative Splicing; Animals; Binding Sites; Calcium; Cells, Cultured; Corpus Striatum; Cyclins; Enzyme Inhibitors; Glutamic Acid; Macromolecular Substances; Mitogen-Activated Protein Kinases; Neurons; PC12 Cells; Phosphorylation; Potassium Chloride; Promoter Regions, Genetic; Purines; Rats; Rats, Sprague-Dawley; Response Elements; Roscovitine; Signal Transduction; Transcription Factor AP-1 | 2003 |
Cyclin-dependent kinase 5 regulates dopaminergic and glutamatergic transmission in the striatum.
Topics: Animals; Cyclin-Dependent Kinase 5; Cyclin-Dependent Kinases; Dopamine; Dopamine and cAMP-Regulated Phosphoprotein 32; Enzyme Inhibitors; Glutamic Acid; In Vitro Techniques; Male; Mice; Mice, Inbred C57BL; Neostriatum; Nerve Tissue Proteins; Phosphoproteins; Phosphorylation; Purines; Receptors, AMPA; Receptors, Dopamine D1; Receptors, N-Methyl-D-Aspartate; RNA, Messenger; Roscovitine; Synapses; Synaptic Transmission | 2004 |
Cyclin-dependent kinase 5 mediates neurotoxin-induced degradation of the transcription factor myocyte enhancer factor 2.
Topics: Amino Acid Chloromethyl Ketones; Animals; Animals, Newborn; Blotting, Western; Caspase Inhibitors; Caspases; Cell Count; Cell Death; Cells, Cultured; Cerebellum; Chromatin; Cyclin-Dependent Kinase 5; Drug Interactions; Glutamic Acid; Green Fluorescent Proteins; Luciferases; MEF2 Transcription Factors; Myogenic Regulatory Factors; Neurons; Neurotoxins; Oligopeptides; Protein Kinase Inhibitors; Purines; Rats; Reverse Transcriptase Polymerase Chain Reaction; RNA, Messenger; Roscovitine; Subcellular Fractions; Time Factors; Transfection | 2005 |
Roscovitine triggers excitotoxicity in cultured granule neurons by enhancing glutamate release.
Topics: Action Potentials; Animals; Calcium; Calcium Channels, L-Type; Calcium Channels, N-Type; Cells, Cultured; Cerebellum; Cytoplasmic Granules; Glutamic Acid; Necrosis; Neurons; Potassium Channel Blockers; Potassium Chloride; Protein Kinase Inhibitors; Purines; Rats; Rats, Sprague-Dawley; Receptors, N-Methyl-D-Aspartate; Roscovitine; Synaptic Transmission | 2005 |
Enhanced activation of Ca2+/calmodulin-dependent protein kinase II upon downregulation of cyclin-dependent kinase 5-p35.
Topics: Animals; Calcium-Calmodulin-Dependent Protein Kinase Type 2; Calcium-Calmodulin-Dependent Protein Kinases; Cells, Cultured; Cerebral Cortex; Cyclin-Dependent Kinase 5; Down-Regulation; Embryo, Mammalian; Enzyme Activation; Enzyme Inhibitors; Excitatory Amino Acid Agonists; Fluorescent Antibody Technique; Glutamic Acid; Immunoprecipitation; In Vitro Techniques; N-Methylaspartate; Neurons; Phosphorylation; Phosphotransferases; Protein Kinases; Purines; Rats; Roscovitine | 2006 |
Colon mustard oil instillation induced cross-organ reflex sensitization on the pelvic-urethra reflex activity in rats.
Topics: Animals; Colon; Cyclin-Dependent Kinase 5; Electric Stimulation; Excitatory Amino Acid Agents; Glutamic Acid; Inflammation; Male; Mustard Plant; Pelvis; Piperidines; Plant Oils; Protein Kinase Inhibitors; Purines; Rats; Rats, Wistar; Receptors, N-Methyl-D-Aspartate; Reflex; RNA, Small Interfering; Roscovitine; TRPV Cation Channels; Urethra | 2009 |
Dephosphorylation of threonine-821 of the retinoblastoma tumor suppressor protein (Rb) is required for apoptosis induced by UV and Cdk inhibition.
Topics: Apoptosis; Blotting, Western; Cell Line, Tumor; Cyclin-Dependent Kinases; Enzyme-Linked Immunosorbent Assay; Glutamic Acid; Humans; Mutagenesis; Mutation, Missense; Phosphorylation; Purines; Retinoblastoma Protein; Roscovitine; S Phase Cell Cycle Checkpoints; Ultraviolet Rays | 2012 |
The Cdk5 inhibitor Roscovitine increases LTP induction in corticostriatal synapses.
Topics: Animals; Calcium Channels, L-Type; Cerebral Cortex; Corpus Striatum; Cyclic AMP-Dependent Protein Kinases; Cyclin-Dependent Kinase 5; Excitatory Postsynaptic Potentials; Glutamic Acid; Long-Term Potentiation; Long-Term Synaptic Depression; Male; Mice; Mice, Inbred C57BL; Neural Pathways; Protein Kinase Inhibitors; Purines; Receptors, Dopamine D1; Receptors, Dopamine D2; Receptors, N-Methyl-D-Aspartate; Roscovitine; Synaptic Transmission | 2014 |
CDK5 knockdown in astrocytes provide neuroprotection as a trophic source via Rac1.
Topics: Animals; Animals, Newborn; Astrocytes; Cells, Cultured; Cerebral Cortex; Coculture Techniques; Cyclin-Dependent Kinase 5; Embryo, Mammalian; Excitatory Amino Acid Agonists; Glioma; Glutamic Acid; Mutation; Nerve Tissue Proteins; Neurons; Neuroprotection; Protein Kinase Inhibitors; Purines; rac1 GTP-Binding Protein; Rats; Rats, Wistar; rhoA GTP-Binding Protein; Roscovitine; Time Factors | 2015 |
Vps35 Deficiency Impairs Cdk5/p35 Degradation and Promotes the Hyperphosphorylation of Tau Protein in Retinal Ganglion Cells.
Topics: Animals; Blotting, Western; Cells, Cultured; Cyclin-Dependent Kinase 5; Down-Regulation; Fluorescent Antibody Technique, Indirect; Glutamic Acid; Lysosomal Membrane Proteins; Male; Mice; Phosphorylation; Phosphotransferases; Protein Kinase Inhibitors; Rats; Rats, Sprague-Dawley; Real-Time Polymerase Chain Reaction; Retinal Degeneration; Retinal Ganglion Cells; Roscovitine; tau Proteins; Transfection; Ubiquitin-Activating Enzymes; Vesicular Transport Proteins | 2020 |
Topographical distance between presynaptic Ca
Topics: Animals; Calcium Channels, N-Type; Cerebellum; Glutamic Acid; Neurotransmitter Agents; Presynaptic Terminals; Rats; Roscovitine; Synapses; Synaptic Transmission | 2021 |