Works matching DE "METHIONINE sulfoxide reductase"
Results: 151
Protection of Membrane Contact Protein by the Methionine Sulfoxide Reductases.
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- Contact (25152564), 2024, p. 1, doi. 10.1177/25152564231223480
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Differential protein abundance of vetiver grass in response to acid mine drainage.
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- Physiologia Plantarum, 2021, v. 173, n. 3, p. 829, doi. 10.1111/ppl.13477
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A reactive oxygen species--related signature to predict prognosis and aid immunotherapy in clear cell renal cell carcinoma.
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- Frontiers in Oncology, 2023, p. 1, doi. 10.3389/fonc.2023.1202151
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Identification of Aeromonas hydrophila Genes Preferentially Expressed after Phagocytosis by Tetrahymena and Involvement of Methionine Sulfoxide Reductases.
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- Frontiers in Cellular & Infection Microbiology, 2016, v. 6, p. 1, doi. 10.3389/fcimb.2016.00199
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Genomic Characterization of External Morphology Traits in Kelpies Does Not Support Common Ancestry with the Australian Dingo.
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- Genes, 2019, v. 10, n. 5, p. 337, doi. 10.3390/genes10050337
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Genome-Wide Identification and Characterization of the Msr Gene Family in Alfalfa under Abiotic Stress.
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- International Journal of Molecular Sciences, 2023, v. 24, n. 11, p. 9638, doi. 10.3390/ijms24119638
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The Key Role of Chalcogenurane Intermediates in the Reduction Mechanism of Sulfoxides and Selenoxides by Thiols Explored In Silico.
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- International Journal of Molecular Sciences, 2023, v. 24, n. 9, p. 7754, doi. 10.3390/ijms24097754
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Recombinant Humanized IgG1 Antibody Protects against oxLDL-Induced Oxidative Stress and Apoptosis in Human Monocyte/Macrophage THP-1 Cells by Upregulation of MSRA via Sirt1-FOXO1 Axis.
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- International Journal of Molecular Sciences, 2022, v. 23, n. 19, p. 11718, doi. 10.3390/ijms231911718
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Involvement of the MetO/Msr System in Two Acer Species That Display Contrasting Characteristics during Germination.
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- International Journal of Molecular Sciences, 2020, v. 21, n. 23, p. 9197, doi. 10.3390/ijms21239197
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Vibrio cholerae ensures function of host proteins required for virulence through consumption of luminal methionine sulfoxide.
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- PLoS Pathogens, 2017, v. 13, n. 6, p. 1, doi. 10.1371/journal.ppat.1006428
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Establishment of an Agrobacterium-mediated genetic transformation procedure for the experimental model orchid Erycina pusilla.
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- Plant Cell, Tissue & Organ Culture, 2015, v. 120, n. 1, p. 211, doi. 10.1007/s11240-014-0596-z
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Comparing proteome changes involved in biofilm formation by Streptococcus mutans after exposure to sucrose and starch.
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- Biotechnology & Applied Biochemistry, 2023, v. 70, n. 3, p. 1320, doi. 10.1002/bab.2442
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Recharging oxidative protein repair: Catalysis by methionine sulfoxide reductases towards their amino acid, protein, and model substrates.
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- Biochemistry (00062979), 2012, v. 77, n. 10, p. 1097, doi. 10.1134/S0006297912100021
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MSRB2 Ameliorates H<sub>2</sub>O<sub>2</sub>-induced Chondrocyte Oxidative Stress and Suppresses Apoptosis in Osteoarthritis.
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- Immunological Investigations, 2024, v. 53, n. 5, p. 813, doi. 10.1080/08820139.2024.2343898
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An Insight on α-crystallin Interactions with Various Proteins in Systemic Disorders.
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- Western Journal of Legal Studies, 2023, v. 19, p. 35
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Elucidation of Mechanisms of Topotecan-Induced Cell Death in Human Breast MCF-7 Cancer Cells by Gene Expression Analysis.
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- Frontiers in Genetics, 2020, v. 11, p. 1, doi. 10.3389/fgene.2020.00775
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Methionine oxidation under anaerobic conditions in Escherichia coli.
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- Molecular Microbiology, 2022, v. 118, n. 4, p. 387, doi. 10.1111/mmi.14971
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Oxidative stress conditions increase the frequency of de novo formation of the yeast [PSI+] prion.
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- Molecular Microbiology, 2015, v. 96, n. 1, p. 163, doi. 10.1111/mmi.12930
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Analysis of methylated genomic cytosines of maize inbred line W22 in response to drought stress.
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- Cereal Research Communications, 2020, v. 48, n. 4, p. 459, doi. 10.1007/s42976-020-00066-5
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Wheat methionine sulfoxide reductase A4.1 interacts with heme oxygenase 1 to enhance seedling tolerance to salinity or drought stress.
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- Plant Molecular Biology, 2019, v. 101, n. 1/2, p. 203, doi. 10.1007/s11103-019-00901-2
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Arabidopsis thaliana methionine sulfoxide reductase B8 influences stress-induced cell death and effector-triggered immunity.
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- Plant Molecular Biology, 2017, v. 93, n. 1-2, p. 109, doi. 10.1007/s11103-016-0550-z
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Dissection of major QTLs and candidate genes for seedling stage salt/drought tolerance in tomato.
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- BMC Genomics, 2024, v. 25, n. 1, p. 1, doi. 10.1186/s12864-024-11101-8
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Methionine sulfoxide reductase regulates brain catechol-O-methyl transferase activity.
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- International Journal of Neuropsychopharmacology, 2014, v. 17, n. 10, p. 1707, doi. 10.1017/S1461145714000467
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Multidrug-resistant Acinetobacter pittii is adapting to and exhibiting potential succession aboard the International Space Station.
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- Microbiome, 2022, v. 10, n. 1, p. 1, doi. 10.1186/s40168-022-01358-0
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Proteomics of developing pea seeds reveals a complex antioxidant network underlying the response to sulfur deficiency and water stress.
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- Journal of Experimental Botany, 2021, v. 72, n. 7, p. 2611, doi. 10.1093/jxb/eraa571
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Sulfoxidation regulation of transcription factor NAC42 influences its functions in relation to stress-induced fruit ripening in banana.
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- Journal of Experimental Botany, 2021, v. 72, n. 2, p. 682, doi. 10.1093/jxb/eraa474
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The MsrAB reducing pathway of Streptococcus gordonii is needed for oxidative stress tolerance, biofilm formation, and oral colonization in mice.
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- PLoS ONE, 2020, v. 15, n. 2, p. 1, doi. 10.1371/journal.pone.0229375
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Deletion of both methionine sulfoxide reductase A and methionine sulfoxide reductase C genes renders Salmonella Typhimurium highly susceptible to hypochlorite stress and poultry macrophages.
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- Molecular Biology Reports, 2021, v. 48, n. 4, p. 3195, doi. 10.1007/s11033-021-06381-2
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Characterization and functional analysis of methionine sulfoxide reductase A gene family in tomato.
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- Molecular Biology Reports, 2012, v. 39, n. 5, p. 6297, doi. 10.1007/s11033-012-1451-0
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PpMYB105 inhibits chilling injury by regulating PpMsrA1 in peach fruit.
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- Plant Cell Reports, 2023, v. 42, n. 10, p. 1557, doi. 10.1007/s00299-023-03047-0
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A three-gene novel predictor for improving the prognosis of cervical cancer.
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- Oncology Letters, 2019, v. 18, n. 5, p. 4907, doi. 10.3892/ol.2019.10815
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Astragaloside IV rescues MPP<sup>+</sup>-induced mitochondrial dysfunction through upregulation of methionine sulfoxide reductase A.
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- Experimental & Therapeutic Medicine, 2017, v. 14, n. 3, p. 2650, doi. 10.3892/etm.2017.4834
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Metabolic benefits of methionine restriction in adult mice do not require functional methionine sulfoxide reductase A (MsrA).
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- Scientific Reports, 2022, v. 12, n. 1, p. 1, doi. 10.1038/s41598-022-08978-4
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Differential Responses of Methionine Sulfoxide Reductases A and B to Anoxia and Oxidative Stress in the Freshwater Turtle Trachemys scripta.
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- Metabolites (2218-1989), 2021, v. 11, n. 7, p. 458, doi. 10.3390/metabo11070458
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Epigenome-Wide Analysis of DNA Methylation in Parkinson's Disease Cortex.
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- Life (2075-1729), 2022, v. 12, n. 4, p. N.PAG, doi. 10.3390/life12040502
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The Neisseria gonorrhoeae Methionine Sulfoxide Reductase (MsrA/B) Is a Surface Exposed, Immunogenic, Vaccine Candidate.
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- Frontiers in Immunology, 2019, p. N.PAG, doi. 10.3389/fimmu.2019.00137
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Methionine 35 sulphoxide reduces toxicity of Aβ in red blood cell.
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- European Journal of Clinical Investigation, 2017, v. 47, n. 4, p. 314, doi. 10.1111/eci.12735
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Higher Circulating Trimethylamine N-oxide Sensitizes Sevoflurane-Induced Cognitive Dysfunction in Aged Rats Probably by Downregulating Hippocampal Methionine Sulfoxide Reductase A.
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- Neurochemical Research, 2019, v. 44, n. 11, p. 2506, doi. 10.1007/s11064-019-02868-4
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Glutathione- and glutaredoxin-dependent reduction of methionine sulfoxide reductase A
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- FEBS Letters, 2012, v. 586, n. 21, p. 3894, doi. 10.1016/j.febslet.2012.09.020
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MSRA polymorphism is associated with the risk of rheumatoid arthritis in a Chinese population.
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- Scandinavian Journal of Rheumatology, 2013, v. 42, n. 2, p. 91, doi. 10.3109/03009742.2012.730626
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- Article
Maize Methionine Sulfoxide Reductase Genes ZmMSRA2 and ZmMSRA5.1 Involved in the Tolerance to Osmotic or Salinity Stress in Arabidopsis and Maize.
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- Plant Molecular Biology Reporter, 2023, v. 41, n. 1, p. 118, doi. 10.1007/s11105-022-01354-6
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Ectopic Expression of Maize Plastidic Methionine Sulfoxide Reductase ZmMSRB1 Enhances Salinity Stress Tolerance in Arabidopsis thaliana.
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- Plant Molecular Biology Reporter, 2022, v. 40, n. 2, p. 284, doi. 10.1007/s11105-021-01320-8
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A Ratiometric Fluorescent Probe for Imaging of the Activity of Methionine Sulfoxide Reductase A in Cells.
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- Angewandte Chemie, 2016, v. 128, n. 41, p. 12919, doi. 10.1002/ange.201605833
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Competitive cobalt for zinc substitution in mammalian methionine sulfoxide reductase B1 overexpressed in E. coli: structural and functional insight.
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- Journal of Biological Inorganic Chemistry (JBIC), 2014, v. 19, n. 1, p. 85, doi. 10.1007/s00775-013-1064-7
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Methionine sulfoxide and the methionine sulfoxide reductase system as modulators of signal transduction pathways: a review.
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- Amino Acids, 2021, v. 53, n. 7, p. 1011, doi. 10.1007/s00726-021-03020-9
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A Methionine Sulfoxide Reductase B Is Required for the Establishment of Astragalus sinicus–Mesorhizobium Symbiosis.
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- Plant & Cell Physiology, 2020, v. 61, n. 9, p. 1631, doi. 10.1093/pcp/pcaa085
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Sulfoxidation Regulation of Musa acuminata Calmodulin (MaCaM) Influences the Functions of MaCaM-Binding Proteins.
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- Plant & Cell Physiology, 2018, v. 59, n. 6, p. 1214, doi. 10.1093/pcp/pcy057
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Arabidopsis Root-Abundant Cytosolic Methionine Sulfoxide Reductase B Genes MsrB7 and MsrB8 are Involved in Tolerance to Oxidative Stress.
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- Plant & Cell Physiology, 2012, v. 53, n. 10, p. 1707, doi. 10.1093/pcp/pcs114
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- Article
Nitric Oxide Up-Regulates the Expression of Methionine Sulfoxide Reductase Genes in the Intertidal Macroalga Ulva fasciata for High Light Acclimation.
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- Plant & Cell Physiology, 2012, v. 53, n. 2, p. 445, doi. 10.1093/pcp/pcr190
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Exploring insertions and deletions (indels) of MSRB3 gene and their association with growth traits in four Chinese indigenous cattle breeds.
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- Archives Animal Breeding / Archiv Tierzucht, 2019, v. 62, n. 2, p. 465, doi. 10.5194/aab-62-465-2019
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