tyrosine and Virus Diseases

tyrosine has been researched along with Virus Diseases in 6 studies

Research

Studies (6)

TimeframeStudies, this research(%)All Research%
pre-19901 (16.67)18.7374
1990's0 (0.00)18.2507
2000's2 (33.33)29.6817
2010's1 (16.67)24.3611
2020's2 (33.33)2.80

Authors

AuthorsStudies
Ai, H; Dulin, H; Gao, L; Hai, R; Hendricks, N; Wuang, K; Xu, D1
Liu, Q; Tang, YD; Wang, C; Xue, M; Yu, C; Zhai, J; Zhao, Z; Zheng, C1
Chen, S; Feng, XH; Hu, L; Huang, Y; Jin, Q; Li, X; Liu, S; Meng, F; Shen, L; Wang, S; Wu, S; Xia, Z; Xu, P; Ye, S; Yu, Z; Zhang, Q; Zhou, R; Zou, J1
Brutkiewicz, RR; Cho, S; Hwang, YK; Lin, Y; Roberts, TJ; Sriram, V1
Akaike, T; Akuta, T; Okamoto, T; Yoshitake, J; Zaki, MH1
Beisel, WR; Dinterman, RE; Klainer, AS; Wannemacher, RW1

Reviews

3 review(s) available for tyrosine and Virus Diseases

ArticleYear
The emerging roles of MARCH8 in viral infections: A double-edged Sword.
    PLoS pathogens, 2023, Volume: 19, Issue:9

    Topics: Antiviral Agents; CD40 Ligand; Humans; Membrane Proteins; Tyrosine; Viral Envelope Proteins; Virus Diseases

2023
CD1d-mediated antigen presentation to natural killer T (NKT) cells.
    Critical reviews in immunology, 2003, Volume: 23, Issue:5-6

    Topics: Amino Acid Sequence; Animals; Antigen Presentation; Antigens, CD1; Antigens, CD1d; Autoimmune Diseases; Bacterial Infections; Cytokines; Glycolipids; Humans; Infections; Killer Cells, Natural; Mice; Models, Immunological; Molecular Sequence Data; Neoplasms; T-Lymphocyte Subsets; Tyrosine; Virus Diseases

2003
Nitrative stress through formation of 8-nitroguanosine: insights into microbial pathogenesis.
    Nitric oxide : biology and chemistry, 2006, Volume: 14, Issue:2

    Topics: Animals; Bacterial Infections; DNA Damage; DNA Repair; Guanosine; Humans; Inflammation; Mice; Models, Biological; Mutagenesis; Nitric Oxide; Nitro Compounds; Oxidation-Reduction; RNA; Tyrosine; Virus Diseases; Virus Replication

2006

Other Studies

3 other study(ies) available for tyrosine and Virus Diseases

ArticleYear
Impact of Protein Nitration on Influenza Virus Infectivity and Immunogenicity.
    Microbiology spectrum, 2022, 12-21, Volume: 10, Issue:6

    Topics: Animals; Anti-Infective Agents; Communicable Diseases; Hemagglutinins; Humans; Influenza, Human; Mice; Nitric Oxide; Orthomyxoviridae; Peroxynitrous Acid; Tyrosine; Virus Diseases

2022
Lck/Hck/Fgr-Mediated Tyrosine Phosphorylation Negatively Regulates TBK1 to Restrain Innate Antiviral Responses.
    Cell host & microbe, 2017, Jun-14, Volume: 21, Issue:6

    Topics: Adaptor Proteins, Signal Transducing; Animals; Antiviral Agents; Cell Line; Chlorocebus aethiops; Cytosol; HEK293 Cells; Hep G2 Cells; Herpesvirus 1, Human; Humans; Immunity, Innate; Interferon Regulatory Factor-3; Male; Mice; Mice, Inbred C57BL; Phosphorylation; Protein Serine-Threonine Kinases; Proto-Oncogene Proteins; Proto-Oncogene Proteins c-hck; Respirovirus Infections; Rhabdoviridae Infections; Sendai virus; src-Family Kinases; Tyrosine; Ubiquitination; Vero Cells; Vesiculovirus; Virus Diseases; Zebrafish; Zebrafish Proteins

2017
The significance and mechanism of an increased serum phenylalanine-tyrosine ratio during infection.
    The American journal of clinical nutrition, 1976, Volume: 29, Issue:9

    Topics: Animals; Bacterial Infections; Body Composition; Carbon Dioxide; Feces; Haplorhini; Humans; Infections; Liver; Macaca mulatta; Male; Muscles; Phenylalanine; Pneumococcal Infections; Rats; Respiration; Rickettsia Infections; Tularemia; Tyrosine; Virus Diseases

1976