glutamic acid has been researched along with phosphoserine in 40 studies
Timeframe | Studies, this research(%) | All Research% |
---|---|---|
pre-1990 | 4 (10.00) | 18.7374 |
1990's | 10 (25.00) | 18.2507 |
2000's | 13 (32.50) | 29.6817 |
2010's | 13 (32.50) | 24.3611 |
2020's | 0 (0.00) | 2.80 |
Authors | Studies |
---|---|
Akoev, GN; Andrianov, GN; Ryzhova, IV; Sherman, NO | 1 |
Adamson, P; Brammer, MJ; Campbell, IC; Hajimohammadreza, I; Meldrum, BS | 1 |
Costa, E; Iadarola, MJ; Nicoletti, F; Wroblewski, JT | 1 |
Meggio, F; Pinna, LA | 1 |
Cotman, CW; Fagg, GE; Foster, AC; Harris, EW; Lanthorn, TH | 1 |
Crooks, SL; Freund, RK; Johnson, RL; Koerner, JF | 1 |
Suzdak, PD; Thomsen, C | 1 |
Deffie, A; Hao, M; Kapoor, M; Liu, G; Lowy, AM; Lozano, G | 1 |
Browner, MF; Buchbinder, JL; Fletterick, RJ; Luong, CB | 1 |
Higashi, H; Kudo, Y; Ohtake, A; Omori, A; Sato, K; Yoshida, S | 1 |
Böhler, C; Hill, AR; Orgel, LE | 2 |
Bockaert, J; Fagni, L; Guiraud, MJ; Lafon-Cazal, M; Lerner-Natoli, M; Mary, S; Pin, JP; Shigemoto, R | 1 |
McConville, MJ; Mirelman, D; Moody-Haupt, S; Patterson, JH | 1 |
Bradley, SR; Conn, PJ; Marino, MJ; Wittmann, M | 1 |
Hill, AR; Orgel, LE | 1 |
Ajima, R; K-Tsuzuku, J; Nakamura, T; Suzuki, T; Yamamoto, T; Yoshida, Y | 1 |
de Tombe, PP; Kobayashi, T; Pyle, WG; Solaro, RJ; Sumandea, MP | 1 |
Duty, S; MacInnes, N; Messenger, MJ | 1 |
de Novellis, V; Maione, S; Marabese, I; Mariani, L; Palazzo, E; Rodella, L; Rossi, F; Siniscalco, D | 1 |
Kuo, MH; Liu, Y; Singh-Rodriguez, S; Xu, X; Zhao, Y | 1 |
Clements, JM; Vanhoose, AM; Winder, DG | 1 |
Chen, X; Feener, EP; Gong, Y; Ishida-Takahashi, R; Kopp, K; Myers, MG; Rosario, F; Stancheva, Z | 1 |
Ding, JH; Hu, G; Wu, JY; Yang, YJ; Yao, HH; Zhang, J; Zhou, F | 1 |
Gardner, EL; Li, X; Xi, ZX | 1 |
Minakova, E; Monsalve, GC; Root, CM; Spitzer, NC; Velázquez-Ulloa, NA | 1 |
Riemen, AJ; Waters, ML | 1 |
Austin, PJ; Betts, MJ; Broadstock, M; Duty, S; Mitchell, SN; O'Neill, MJ | 1 |
Guan, X; Lu, W; Petralia, RS; Rothstein, JD; Tao, YX; Yaster, M | 1 |
Tapia, R; Vera, G | 1 |
Calaza, KC; Guimarães-Souza, EM | 1 |
Klerman, H; Levine, E; McClendon, CL; Rapp, C | 1 |
Cui, Q; Liu, ZP; Mkhonto, D; Sahai, N; Shang, C; Wang, Z; Xu, Z; Yang, Y | 1 |
Grigg, JC; Heinrichs, DE; Kobylarz, MJ; Murphy, ME; Rai, DK; Takayama, SJ | 1 |
Kang, HJ; Lichtarge, O; Ma, J; Menlove, K; Wensel, TG; Wilkins, A | 1 |
Delangle, P; Laporte, FA; Lebrun, C; Oros, S; Sisommay, N; Starck, M | 1 |
Foulds, WS; Kaur, C; Ling, EA; Rathnasamy, G | 1 |
Julien, O; Lee, PS; Rettenmaier, TJ; Seaman, JE; Thomsen, ND; Wells, JA | 1 |
Cho, M; Cho, NC; Hwang, EM; Justin Lee, C; Kim, E; Lee, YS; Oh, SJ; Pae, AN; Park, JY; Woo, J | 1 |
Frost, JA; Oh, W; Ulu, A; Zuo, Y | 1 |
40 other study(ies) available for glutamic acid and phosphoserine
Article | Year |
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L-serine-O-phosphate blocks NMDA-evoked responses in the ampullae of Lorenzini of skates.
Topics: Amino Acids; Animals; Glutamates; Glutamic Acid; In Vitro Techniques; Kainic Acid; N-Methylaspartate; Neurons, Afferent; Phosphoserine; Quisqualic Acid; Skates, Fish; Synapses; Synaptic Transmission | 1992 |
Presynaptic glutamate/quisqualate receptors: effects on synaptosomal free calcium concentrations.
Topics: 6-Cyano-7-nitroquinoxaline-2,3-dione; Aminobutyrates; Animals; Calcium; Excitatory Amino Acid Antagonists; Glutamates; Glutamic Acid; Ibotenic Acid; Male; Phosphoserine; Quinoxalines; Quisqualic Acid; Rats; Rats, Inbred Strains; Receptors, AMPA; Receptors, Glutamate; Receptors, Neurotransmitter; Synapses; Synaptosomes | 1990 |
Excitatory amino acid recognition sites coupled with inositol phospholipid metabolism: developmental changes and interaction with alpha 1-adrenoceptors.
Topics: Age Factors; Aminobutyrates; Animals; Aspartic Acid; Drug Interactions; Glutamates; Glutamic Acid; Hippocampus; Hydrolysis; Ibotenic Acid; Norepinephrine; Oxadiazoles; Oxazoles; Phosphatidylinositols; Phosphoserine; Quisqualic Acid; Rats; Rats, Inbred Strains; Receptors, Adrenergic, alpha; Receptors, Amino Acid; Receptors, Cell Surface | 1986 |
Phosphorylation of phosvitin by casein kinase-2 provides the evidence that phosphoserines can replace carboxylic amino acids as specificity determinants.
Topics: Amino Acids; Aspartic Acid; Casein Kinases; Egg Proteins; Glutamates; Glutamic Acid; Phosphorylation; Phosphoserine; Phosphothreonine; Phosvitin; Protein Kinases; Serine; Substrate Specificity | 1988 |
Structure--activity relationships of L-glutamate receptor ligands: role of the omega-acidic terminal.
Topics: Aminobutyrates; Animals; Evoked Potentials; Glutamates; Glutamic Acid; Hippocampus; Phosphoserine; Phosphothreonine; Rats; Receptors, Cell Surface; Receptors, Glutamate; Stereoisomerism; Structure-Activity Relationship; Synapses; Synaptic Transmission | 1982 |
Antagonist activity of phosphorus-containing glutamate analogues in the perforant path.
Topics: Aminobutyrates; Animals; Depression, Chemical; Evoked Potentials; Glutamates; Glutamic Acid; Hippocampus; Male; Neural Pathways; Phosphoserine; Rats; Rats, Inbred Strains; Structure-Activity Relationship; Synaptic Transmission | 1984 |
Serine-O-phosphate has affinity for type IV, but not type I, metabotropic glutamate receptor.
Topics: Animals; Cell Line; Colforsin; Cricetinae; Culture Media; Cyclic AMP; Glutamates; Glutamic Acid; Hydrolysis; Kidney; Phosphatidylinositols; Phosphoserine; Receptors, Metabotropic Glutamate; Stereoisomerism | 1993 |
Mutation of phosphoserine 389 affects p53 function in vivo.
Topics: 3T3 Cells; Animals; Cyclins; DNA-Binding Proteins; G1 Phase; Glutamic Acid; Mice; Mutagenesis, Site-Directed; Phosphorylation; Phosphoserine; Transcription, Genetic; Tumor Suppressor Protein p53 | 1996 |
Partial activation of muscle phosphorylase by replacement of serine 14 with acidic residues at the site of regulatory phosphorylation.
Topics: Animals; Aspartic Acid; Binding Sites; Enzyme Activation; Glutamic Acid; Kinetics; Muscles; Mutagenesis, Site-Directed; Phosphorylases; Phosphorylation; Phosphoserine; Protein Conformation; Protein Folding; Rabbits; Serine | 1997 |
Imaging of cAMP-dependent protein kinase activity in living neural cells using a novel fluorescent substrate.
Topics: Amino Acid Sequence; Animals; Cell Membrane Permeability; Cyclic AMP; Cyclic AMP-Dependent Protein Kinases; Cytosol; Enzyme Activation; Fluorescent Dyes; Glutamic Acid; Hippocampus; Image Processing, Computer-Assisted; Microscopy, Fluorescence; Molecular Sequence Data; Neurons; Peptide Fragments; Phosphorylation; Phosphoserine; Rats; Tumor Cells, Cultured | 1997 |
Polymerization on the rocks: negatively-charged alpha-amino acids.
Topics: Adsorption; Amino Acids, Dicarboxylic; Aspartic Acid; Chromatography, High Pressure Liquid; Durapatite; Electrochemistry; Glutamic Acid; Minerals; Models, Chemical; Oligopeptides; Peptides; Phosphoserine | 1998 |
mGluR7-like metabotropic glutamate receptors inhibit NMDA-mediated excitotoxicity in cultured mouse cerebellar granule neurons.
Topics: Animals; Calcium Channels; Cell Death; Cells, Cultured; Cerebellum; Cyclic GMP; Cycloleucine; Dizocilpine Maleate; Excitatory Amino Acid Agonists; Excitatory Amino Acid Antagonists; Glutamic Acid; Kainic Acid; Mice; Microtubule-Associated Proteins; N-Methylaspartate; Neurons; Neuroprotective Agents; Neurotoxins; Patch-Clamp Techniques; Phosphoserine; Propionates; Receptors, AMPA; Receptors, Metabotropic Glutamate; Receptors, N-Methyl-D-Aspartate | 1999 |
The major surface antigens of Entamoeba histolytica trophozoites are GPI-anchored proteophosphoglycans.
Topics: Animals; Antigens, Protozoan; Antigens, Surface; Aspartic Acid; Carbohydrate Conformation; Disaccharides; Entamoeba histolytica; Glutamic Acid; Glycosylphosphatidylinositols; Hexoses; Hydrofluoric Acid; Hydrogen-Ion Concentration; Hydrolysis; Inositol; Inositol Phosphates; Methylation; Molecular Weight; Peptides; Phosphorylation; Phosphoserine; Polysaccharides; Trifluoroacetic Acid; Virulence | 2000 |
Activation of group III mGluRs inhibits GABAergic and glutamatergic transmission in the substantia nigra pars reticulata.
Topics: 2-Amino-5-phosphonovalerate; 6-Cyano-7-nitroquinoxaline-2,3-dione; Action Potentials; Amino Acids; Aminobutyrates; Animals; Bicuculline; Drug Design; Electric Stimulation; Excitatory Amino Acid Antagonists; Excitatory Postsynaptic Potentials; GABA Antagonists; gamma-Aminobutyric Acid; Glutamic Acid; Glycine; Kainic Acid; Nerve Tissue Proteins; Patch-Clamp Techniques; Phosphoserine; Rats; Rats, Sprague-Dawley; Receptors, AMPA; Receptors, GABA-A; Receptors, Metabotropic Glutamate; Receptors, Presynaptic; Substantia Nigra; Xanthenes | 2001 |
Catalysis of the oligomerization of O-phospho-serine, aspartic acid, or glutamic acid by cationic micelles.
Topics: Amino Acids; Aspartic Acid; Catalysis; Cetrimonium; Cetrimonium Compounds; Evolution, Molecular; Glutamic Acid; Hydrogen-Ion Concentration; Imidazoles; Micelles; Oligopeptides; Phosphoserine | 1996 |
Oligomerization of negatively-charged amino acids by carbonyldiimidazole.
Topics: Aspartic Acid; Catalysis; Evolution, Chemical; Glutamic Acid; Imidazoles; Magnesium; Phosphoserine; Polymers; Temperature | 1996 |
Phosphorylation of three regulatory serines of Tob by Erk1 and Erk2 is required for Ras-mediated cell proliferation and transformation.
Topics: 3T3 Cells; Alanine; Animals; Carrier Proteins; Cell Cycle; Cell Division; Cell Transformation, Neoplastic; Cyclin D1; Enzyme Inhibitors; Flavonoids; G1 Phase; Glutamic Acid; Glutamine; Glutathione Transferase; Intracellular Signaling Peptides and Proteins; Mice; Microscopy, Fluorescence; Mitogen-Activated Protein Kinase 1; Mitogen-Activated Protein Kinase 3; Mitogen-Activated Protein Kinases; Peptide Mapping; Phosphorylation; Phosphoserine; Plasmids; Protein Structure, Tertiary; ras Proteins; Resting Phase, Cell Cycle; S Phase; Serine; Time Factors; Transfection | 2002 |
Identification of a functionally critical protein kinase C phosphorylation residue of cardiac troponin T.
Topics: Actomyosin; Amino Acid Sequence; Amino Acid Substitution; Animals; Ca(2+) Mg(2+)-ATPase; Calcium; Cloning, Molecular; Glutamic Acid; Humans; Mice; Molecular Sequence Data; Mutagenesis, Site-Directed; Myocardial Contraction; Myocardium; Peptide Fragments; Phosphorylation; Phosphoserine; Phosphothreonine; Protein Kinase C; Protein Structure, Secondary; Recombinant Proteins; Troponin T; Ventricular Function, Left | 2003 |
Activation of group III metabotropic glutamate receptors in selected regions of the basal ganglia alleviates akinesia in the reserpine-treated rat.
Topics: Aminobutyrates; Animals; Cerebral Ventricles; Dose-Response Relationship, Drug; Globus Pallidus; Glutamic Acid; Hypokinesia; Injections, Intraventricular; Injections, Subcutaneous; Male; Movement; Phosphoserine; Rats; Rats, Sprague-Dawley; Receptors, Metabotropic Glutamate; Reserpine; Rotation; Substantia Nigra | 2004 |
Differential roles of mGlu8 receptors in the regulation of glutamate and gamma-aminobutyric acid release at periaqueductal grey level.
Topics: Alanine; Aminobutyrates; Analysis of Variance; Animals; Benzoates; Colforsin; Dose-Response Relationship, Drug; Drug Combinations; Drug Interactions; Excitatory Amino Acid Agonists; Excitatory Amino Acid Antagonists; gamma-Aminobutyric Acid; Glutamic Acid; Glycine; Immunohistochemistry; Isoquinolines; Male; Microdialysis; Microscopy, Immunoelectron; Periaqueductal Gray; Phosphoserine; Protein Kinase Inhibitors; Rats; Rats, Wistar; Receptors, Metabotropic Glutamate; Sulfonamides; Time Factors | 2005 |
Histone H3 Ser10 phosphorylation-independent function of Snf1 and Reg1 proteins rescues a gcn5- mutant in HIS3 expression.
Topics: Alleles; Amino Acid Sequence; Base Sequence; Gene Expression Regulation, Fungal; Glutamic Acid; Histone Acetyltransferases; Histones; Hydro-Lyases; Molecular Sequence Data; Mutation; Phenotype; Phosphoprotein Phosphatases; Phosphoserine; Protein Binding; Protein Phosphatase 1; Protein Serine-Threonine Kinases; Saccharomyces cerevisiae; Saccharomyces cerevisiae Proteins; Suppression, Genetic | 2005 |
Novel blockade of protein kinase A-mediated phosphorylation of AMPA receptors.
Topics: 2-Amino-5-phosphonovalerate; Adrenergic beta-Antagonists; alpha-Amino-3-hydroxy-5-methyl-4-isoxazolepropionic Acid; Animals; Benzothiadiazines; Calcineurin Inhibitors; Calcium; Cyclic AMP; Cyclic AMP-Dependent Protein Kinases; Cyclosporine; Egtazic Acid; Excitatory Amino Acid Antagonists; Glutamic Acid; GTP-Binding Protein alpha Subunits, Gs; Hippocampus; Isoproterenol; Long-Term Potentiation; Male; Marine Toxins; Mice; Mice, Inbred C57BL; N-Methylaspartate; Oxazoles; Phenols; Phosphoprotein Phosphatases; Phosphorylation; Phosphoserine; Piperidines; Protein Phosphatase 1; Protein Phosphatase 2; Protein Processing, Post-Translational; Receptors, Adrenergic, beta-1; Receptors, AMPA; Receptors, N-Methyl-D-Aspartate; Signal Transduction | 2006 |
Phosphorylation of Jak2 on Ser(523) inhibits Jak2-dependent leptin receptor signaling.
Topics: Animals; Enzyme Activation; Gene Expression Regulation, Enzymologic; Glutamic Acid; Humans; Janus Kinase 2; Mass Spectrometry; Mice; Mutation; Phosphorylation; Phosphoserine; Protein-Tyrosine Kinases; Proto-Oncogene Proteins; Receptors, Cell Surface; Receptors, Leptin; Signal Transduction; Substrate Specificity | 2006 |
Activation of Group II/III metabotropic glutamate receptors attenuates LPS-induced astroglial neurotoxicity via promoting glutamate uptake.
Topics: Animals; Apoptosis; Astrocytes; Brain; Cells, Cultured; Cyclopropanes; Excitatory Amino Acid Agonists; Glutamic Acid; Glutathione; Glycine; Immunohistochemistry; Lipopolysaccharides; Neurons; Neuroprotective Agents; Phosphoserine; Propionates; Rats; Rats, Sprague-Dawley; Receptors, Metabotropic Glutamate | 2006 |
The metabotropic glutamate receptor 7 (mGluR7) allosteric agonist AMN082 modulates nucleus accumbens GABA and glutamate, but not dopamine, in rats.
Topics: Analysis of Variance; Anesthetics, Local; Animals; Baclofen; Benzhydryl Compounds; Dopamine; Dose-Response Relationship, Drug; Drug Interactions; Excitatory Amino Acid Agonists; Excitatory Amino Acid Antagonists; GABA Antagonists; gamma-Aminobutyric Acid; Glutamic Acid; Male; Microdialysis; Nucleus Accumbens; Phosphoserine; Rats; Rats, Long-Evans; Tetrodotoxin | 2008 |
Embryonically expressed GABA and glutamate drive electrical activity regulating neurotransmitter specification.
Topics: Animals; Calcium; CD57 Antigens; Choline O-Acetyltransferase; Embryo, Nonmammalian; Enzyme Inhibitors; Excitatory Amino Acid Antagonists; GABA Antagonists; gamma-Aminobutyric Acid; Gene Expression Regulation, Developmental; Glutamate Decarboxylase; Glutamic Acid; Health Services Research; Larva; Morpholines; Neurons; Phosphoserine; Receptors, GABA; Receptors, Glutamate; Synapses; Vesicular Glutamate Transport Proteins; Xenopus | 2008 |
Controlling peptide folding with repulsive interactions between phosphorylated amino acids and tryptophan.
Topics: Circular Dichroism; Glutamic Acid; Hydrogen-Ion Concentration; Nuclear Magnetic Resonance, Biomolecular; Peptides; Phosphorylation; Phosphoserine; Protein Folding; Protein Processing, Post-Translational; Serine; Threonine; Tryptophan; Tyrosine | 2009 |
Symptomatic and neuroprotective effects following activation of nigral group III metabotropic glutamate receptors in rodent models of Parkinson's disease.
Topics: Aminobutyrates; Animals; Aspartic Acid; Disease Models, Animal; Excitatory Amino Acid Agonists; Glutamic Acid; Immunohistochemistry; Male; Microdialysis; Motor Activity; Neuroprotective Agents; Parkinson Disease; Phosphoserine; Rats; Rats, Sprague-Dawley; Receptors, Metabotropic Glutamate; Substantia Nigra | 2010 |
Effect of inhibition of spinal cord glutamate transporters on inflammatory pain induced by formalin and complete Freund's adjuvant.
Topics: Amino Acid Transport System X-AG; Animals; Aspartic Acid; Blotting, Western; Disease Models, Animal; Formaldehyde; Freund's Adjuvant; Glutamic Acid; Inflammation; Kainic Acid; Male; Nicotinic Acids; Pain; Phosphoserine; Posterior Horn Cells; Rats; Rats, Sprague-Dawley; Receptors, Metabotropic Glutamate; Spinal Cord | 2011 |
Activation of group III metabotropic glutamate receptors by endogenous glutamate protects against glutamate-mediated excitotoxicity in the hippocampus in vivo.
Topics: 4-Aminopyridine; Amino Acids; Animals; Carboxylic Acids; Chromatography, High Pressure Liquid; Disease Models, Animal; Dizocilpine Maleate; Dose-Response Relationship, Drug; Electrochemistry; Electroencephalography; Epilepsy; Excitatory Amino Acid Antagonists; Extracellular Fluid; Glutamic Acid; Hippocampus; Male; Microdialysis; Phosphoserine; Potassium Channel Blockers; Pyridines; Rats; Rats, Wistar; Receptors, Metabotropic Glutamate; Time Factors | 2012 |
Selective activation of group III metabotropic glutamate receptor subtypes produces different patterns of γ-aminobutyric acid immunoreactivity and glutamate release in the retina.
Topics: Amacrine Cells; Anilides; Animals; Benzhydryl Compounds; Calcium; Chickens; Cyclohexanecarboxylic Acids; Dizocilpine Maleate; GABA Plasma Membrane Transport Proteins; GABAergic Neurons; gamma-Aminobutyric Acid; Glutamic Acid; Nipecotic Acids; Oximes; Phosphoserine; Quinoxalines; Receptors, Metabotropic Glutamate | 2012 |
Hydrogen bond strengths in phosphorylated and sulfated amino acid residues.
Topics: Amino Acids; Arginine; Computational Biology; Databases, Protein; Glutamic Acid; Humans; Hydrogen Bonding; Molecular Dynamics Simulation; Peptides; Phosphates; Phosphorylation; Phosphoserine; Phosphotyrosine; Protein Binding; Protein Processing, Post-Translational; Proteins; Solvents; Static Electricity; Tyrosine | 2013 |
Small molecule-mediated control of hydroxyapatite growth: free energy calculations benchmarked to density functional theory.
Topics: Adsorption; Durapatite; Glutamic Acid; Phosphoserine; Quantum Theory; Surface Properties | 2014 |
Synthesis of L-2,3-diaminopropionic acid, a siderophore and antibiotic precursor.
Topics: Anti-Bacterial Agents; Bacterial Proteins; beta-Alanine; Binding Sites; Catalytic Domain; Citrates; Crystallography, X-Ray; Glutamic Acid; Hydrolysis; Ketoglutaric Acids; Molecular Dynamics Simulation; NAD; Phosphoserine; Recombinant Proteins; Siderophores; Staphylococcus aureus | 2014 |
Selectivity and evolutionary divergence of metabotropic glutamate receptors for endogenous ligands and G proteins coupled to phospholipase C or TRP channels.
Topics: Amino Acid Sequence; Animals; Calcium; Evolution, Molecular; Genes, Dominant; Glutamic Acid; GTP-Binding Proteins; HEK293 Cells; Humans; Ligands; Membrane Potentials; Mice; Models, Molecular; Molecular Sequence Data; Phosphoserine; Protein Structure, Tertiary; Protein Subunits; Rats; Receptors, Metabotropic Glutamate; Signal Transduction; Transient Receptor Potential Channels; Type C Phospholipases | 2014 |
Preorganized Peptide Scaffolds as Mimics of Phosphorylated Proteins Binding Sites with a High Affinity for Uranyl.
Topics: Amino Acid Sequence; Binding Sites; Calcium; Chelating Agents; Circular Dichroism; Glutamic Acid; Imino Acids; Molecular Mimicry; Osteopontin; Peptides, Cyclic; Phosphopeptides; Phosphoserine; Protein Structure, Secondary; Spectrometry, Mass, Electrospray Ionization; Tryptophan; Uranyl Nitrate | 2015 |
Glutamate Inhibits the Pro-Survival Effects of Insulin-Like Growth Factor-1 on Retinal Ganglion Cells in Hypoxic Neonatal Rat Retina.
Topics: Animals; Animals, Newborn; Apoptosis; Cell Survival; Cyclic AMP-Dependent Protein Kinases; Glutamic Acid; Hypoxia; Insulin Receptor Substrate Proteins; Insulin-Like Growth Factor I; Phosphorylation; Phosphoserine; Proto-Oncogene Proteins c-akt; Rats, Wistar; Receptor, IGF Type 1; Retinal Ganglion Cells; Signal Transduction; Up-Regulation | 2017 |
Cacidases: caspases can cleave after aspartate, glutamate and phosphoserine residues.
Topics: Amino Acid Sequence; Animals; Apoptosis; Aspartic Acid; Caspases; Conserved Sequence; Crystallography, X-Ray; Glutamic Acid; HEK293 Cells; Humans; Kinetics; Mice; Peptides; Phosphorylation; Phosphoserine; Proteolysis; Substrate Specificity | 2016 |
Direct interaction with 14-3-3γ promotes surface expression of Best1 channel in astrocyte.
Topics: 14-3-3 Proteins; Astrocytes; Bestrophins; Binding Sites; Cell Membrane; Glutamic Acid; HEK293 Cells; Hippocampus; Humans; Phosphoserine; Protein Binding; RNA, Small Interfering | 2017 |
Stress-activated MAPKs and CRM1 regulate the subcellular localization of Net1A to control cell motility and invasion.
Topics: Cell Movement; Cytosol; Epidermal Growth Factor; Exportin 1 Protein; Extracellular Matrix; Glutamic Acid; Humans; Karyopherins; MCF-7 Cells; Mitogen-Activated Protein Kinases; Mutation; Oncogene Proteins; Phosphorylation; Phosphoserine; Podosomes; Protein Transport; Receptors, Cytoplasmic and Nuclear; rhoA GTP-Binding Protein; Signal Transduction; Stress, Physiological; Tumor Necrosis Factor-alpha | 2018 |