methyl methanesulfonate has been researched along with serine in 9 studies
Timeframe | Studies, this research(%) | All Research% |
---|---|---|
pre-1990 | 2 (22.22) | 18.7374 |
1990's | 1 (11.11) | 18.2507 |
2000's | 3 (33.33) | 29.6817 |
2010's | 3 (33.33) | 24.3611 |
2020's | 0 (0.00) | 2.80 |
Authors | Studies |
---|---|
Dalbadie-McFarland, G; Davis, EF; Foster, PL; Richards, JH; Schultz, SC | 1 |
Anderson, PM; Fuchs, JA; Johnson, WV; Korte, JJ; Sung, YC; Xiong, XF | 1 |
Alcántara, GH; de Gómez-Puyou, MT; Gao, XG; Garza-Ramos, G; Gómez-Puyou, A; Maldonado, E; Pérez-Montfort, R; Reyes-Vivas, H | 1 |
Biber, J; Forster, IC; Lambert, G; Murer, H | 1 |
Adachi, M; Imai, K; Itoh, F; Nakahata, A; Nakayama, I; Takekawa, M; Taya, Y; Tsukuda, H | 1 |
Bradbury, EM; Krutilina, RI; Nazarov, IB; Nikiforov, AA; Oei, SL; Smirnova, AN; Solovjeva, LV; Svetlova, MP; Tomilin, NV; Yau, PM; Zalenskaya, IA | 1 |
Aslam, A; Logie, C | 1 |
Ohashi, E; Takeishi, Y; Tsurimoto, T; Ueda, S | 1 |
Liu, Q; Mu, C; Sang, J; Wan, J; Wang, Y; Yao, G | 1 |
9 other study(ies) available for methyl methanesulfonate and serine
Article | Year |
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Creation of a test plasmid for detecting G-C-to-T-A transversions by changing serine to arginine in the active site of beta-lactamase.
Topics: Aflatoxins; Amino Acid Sequence; Arginine; beta-Lactamases; Binding Sites; Methyl Methanesulfonate; Methylnitronitrosoguanidine; Mutation; Plasmids; Serine; Ultraviolet Rays | 1987 |
Reversible dissociation of active octamer of cyanase to inactive dimer promoted by alteration of the sulfhydryl group.
Topics: Aminohydrolases; Azides; Bicarbonates; Carbon-Nitrogen Lyases; Chromatography, Gel; Cysteine; Enzyme Activation; Enzyme Reactivators; Escherichia coli; Ethylmaleimide; Macromolecular Substances; Mercuric Chloride; Methyl Methanesulfonate; Mutation; Oxalates; Oxalic Acid; Serine; Spectrometry, Fluorescence; Structure-Activity Relationship; Sulfhydryl Compounds; Tetranitromethane | 1988 |
Derivatization of the interface cysteine of triosephosphate isomerase from Trypanosoma brucei and Trypanosoma cruzi as probe of the interrelationship between the catalytic sites and the dimer interface.
Topics: Animals; Catalysis; Cysteine; Dimerization; Dithionitrobenzoic Acid; Enzyme Activation; Enzyme Inhibitors; Glyceraldehyde 3-Phosphate; Glycolates; Methyl Methanesulfonate; Mutagenesis, Site-Directed; Serine; Substrate Specificity; Sulfhydryl Reagents; Triose-Phosphate Isomerase; Trypanosoma brucei brucei; Trypanosoma cruzi | 1999 |
Cysteine residues and the structure of the rat renal proximal tubular type II sodium phosphate cotransporter (rat NaPi IIa).
Topics: Amino Acid Sequence; Amino Acid Substitution; Animals; Carrier Proteins; Cysteine; Disulfides; Ethyl Methanesulfonate; Kidney Tubules, Proximal; Mesylates; Methyl Methanesulfonate; Molecular Sequence Data; Mutagenesis, Site-Directed; Oocytes; Protein Structure, Tertiary; Rats; Reducing Agents; Serine; Sodium-Phosphate Cotransporter Proteins; Sodium-Phosphate Cotransporter Proteins, Type II; Sodium-Phosphate Cotransporter Proteins, Type IIa; Symporters; Xenopus laevis | 2000 |
p53-inducible wip1 phosphatase mediates a negative feedback regulation of p38 MAPK-p53 signaling in response to UV radiation.
Topics: Animals; Anisomycin; Antineoplastic Agents, Alkylating; Apoptosis; Blotting, Northern; Cell Nucleus; COS Cells; DNA Damage; Dose-Response Relationship, Drug; Down-Regulation; Enzyme Inhibitors; Gamma Rays; Glutathione Transferase; Humans; Hydrogen Peroxide; Imidazoles; Luciferases; Methyl Methanesulfonate; Microscopy, Fluorescence; Mitogen-Activated Protein Kinases; Nucleic Acid Synthesis Inhibitors; p38 Mitogen-Activated Protein Kinases; Phosphorylation; Plant Proteins; Plasmids; Precipitin Tests; Pyridines; Recombinant Fusion Proteins; Serine; Serine Proteinase Inhibitors; Signal Transduction; Threonine; Time Factors; Transfection; Tumor Suppressor Protein p53; Ultraviolet Rays | 2000 |
Dephosphorylation of histone gamma-H2AX during repair of DNA double-strand breaks in mammalian cells and its inhibition by calyculin A.
Topics: Animals; Antimetabolites, Antineoplastic; Antineoplastic Agents, Alkylating; Bleomycin; Cell Nucleus; Cells, Cultured; Chromatin; Cricetinae; DNA Damage; DNA Repair; DNA-Binding Proteins; Electrophoresis, Gel, Pulsed-Field; Fibroblasts; Green Fluorescent Proteins; Histones; Humans; Immunoblotting; Kinetics; Luminescent Proteins; Marine Toxins; Methyl Methanesulfonate; Microscopy, Fluorescence; Oxazoles; Phosphoprotein Phosphatases; Phosphorylation; Plasmids; Protein Phosphatase 1; Recombinant Fusion Proteins; Saccharomyces cerevisiae Proteins; Serine; Time Factors; Tumor Cells, Cultured; Ubiquitin-Protein Ligases | 2003 |
Histone H3 serine 57 and lysine 56 interplay in transcription elongation and recovery from S-phase stress.
Topics: Amino Acid Substitution; Clone Cells; DNA Damage; G2 Phase; Genes, Dominant; HeLa Cells; Histones; Humans; Lysine; Methyl Methanesulfonate; Mitosis; Mutation; Phosphorylation; S Phase; Saccharomyces cerevisiae; Serine; Stress, Physiological; Suppression, Genetic; Transcription, Genetic | 2010 |
Two serine phosphorylation sites in the C-terminus of Rad9 are critical for 9-1-1 binding to TopBP1 and activation of the DNA damage checkpoint response in HeLa cells.
Topics: Carrier Proteins; Cell Cycle Proteins; Checkpoint Kinase 1; DNA Damage; DNA Repair; DNA-Binding Proteins; Drug Resistance, Neoplasm; Gene Expression Regulation, Neoplastic; Gene Silencing; HeLa Cells; Humans; Hydroxyurea; Methyl Methanesulfonate; Nuclear Proteins; Phosphorylation; Protein Binding; Protein Kinases; RNA Interference; Serine; Ultraviolet Rays | 2012 |
Characterization of Pph3-mediated dephosphorylation of Rad53 during methyl methanesulfonate-induced DNA damage repair in
Topics: Candida albicans; Cell Cycle Checkpoints; Cell Cycle Proteins; Checkpoint Kinase 2; DNA Damage; DNA Repair; Fungal Proteins; Gene Deletion; Gene Expression Regulation, Fungal; Methyl Methanesulfonate; Phosphoprotein Phosphatases; Phosphorylation; Protein Serine-Threonine Kinases; Serine | 2017 |