Page last updated: 2024-08-23

azides and trazodone hydrochloride

azides has been researched along with trazodone hydrochloride in 10 studies

Research

Studies (10)

TimeframeStudies, this research(%)All Research%
pre-19901 (10.00)18.7374
1990's3 (30.00)18.2507
2000's2 (20.00)29.6817
2010's3 (30.00)24.3611
2020's1 (10.00)2.80

Authors

AuthorsStudies
Fossett, NG; Ganguly, P1
Herrmann, RG; Klösgen, RB; Mant, A; Robinson, C; Schmidt, I1
Knott, TG; Robinson, C1
Fischer-Iglesias, C; Jones, AM; Neuhaus, G; Sundberg, B1
Cleland, RE; Fujiwara, T; Lucas, WJ1
Abe, M; Arisaka, F; Endo, Y; Hiramatsu, T; Hori, H; Hosoya, T; Kitamura, M; Nakanishi, T; Nishikawa, K; Ogasawara, T; Ohno, S; Sawasaki, T; Suzuki, M; Yokogawa, T1
Huang, Y; Li, G; Liu, X; Pang, Y; Su, Z; Tong, L; Zhang, M1
Claussnitzer, I; Gerrits, M; Kubick, S; Merk, H; Quast, RB1
Cassinelli, V; Fuchs, J; Hesse, S; Houben, A; Ma, L; Manetto, A; Raddaoui, N1
An, X; Hou, Q; Huang, W; Li, W; Mo, L; Sun, Z; Wei, H; Yao, C; Yu, J1

Other Studies

10 other study(ies) available for azides and trazodone hydrochloride

ArticleYear
Evidence for multiple mechanisms of interaction between wheat germ agglutinin and human platelets.
    Biochimica et biophysica acta, 1980, Feb-07, Volume: 627, Issue:3

    Topics: Azides; Blood Platelets; Calcium; Edetic Acid; Humans; Lectins; Plant Lectins; Plasma; Platelet Aggregation; Prostaglandins E; Serotonin; Triticum

1980
Sec-dependent thylakoid protein translocation. Delta pH requirement is dictated by passenger protein and ATP concentration.
    The Journal of biological chemistry, 1995, Oct-06, Volume: 270, Issue:40

    Topics: Adenosine Triphosphate; Azides; Biological Transport, Active; Chloroplast Proteins; Chloroplasts; Energy Metabolism; Hydrogen-Ion Concentration; Membrane Proteins; Nigericin; Plant Proteins; Recombinant Fusion Proteins; Sodium Azide; Triticum

1995
The secA inhibitor, azide, reversibly blocks the translocation of a subset of proteins across the chloroplast thylakoid membrane.
    The Journal of biological chemistry, 1994, Mar-18, Volume: 269, Issue:11

    Topics: Adenosine Triphosphatases; Azides; Bacterial Proteins; Chloroplasts; Cloning, Molecular; Escherichia coli Proteins; Fabaceae; Genes, Plant; Hydrogen-Ion Concentration; Intracellular Membranes; Membrane Transport Proteins; Methionine; Molecular Weight; Nigericin; Photosynthetic Reaction Center Complex Proteins; Photosystem II Protein Complex; Plant Proteins; Plants, Medicinal; Protein Biosynthesis; Protein Processing, Post-Translational; Rhodophyta; SEC Translocation Channels; SecA Proteins; Sodium Azide; Transcription, Genetic; Triticum

1994
Auxin distribution and transport during embryonic pattern formation in wheat.
    The Plant journal : for cell and molecular biology, 2001, Volume: 26, Issue:2

    Topics: Affinity Labels; Azides; Biological Transport; Body Patterning; Gas Chromatography-Mass Spectrometry; Herbicides; In Vitro Techniques; Indoleacetic Acids; Isotope Labeling; Microradiography; Models, Biological; Phthalimides; Plant Growth Regulators; Seeds; Triticum; Tritium

2001
Plasmodesmal-mediated cell-to-cell transport in wheat roots is modulated by anaerobic stress.
    Protoplasma, 1994, Volume: 178, Issue:1-2

    Topics: Adenosine Triphosphate; Anaerobiosis; Azides; Biological Transport; Fluorescent Dyes; Nitrogen; Particle Size; Plant Roots; Triticum

1994
Detection of structural changes in a cofactor binding protein by using a wheat germ cell-free protein synthesis system coupled with unnatural amino acid probing.
    Proteins, 2007, May-15, Volume: 67, Issue:3

    Topics: Amino Acids; Azides; Bacterial Proteins; Binding Sites; Cell-Free System; Chromatography, Gel; Circular Dichroism; Flavoproteins; Fluorescein; Models, Biological; Molecular Structure; Nucleic Acid Conformation; Protein Biosynthesis; Protein Conformation; RNA, Transfer, Tyr; Triticum; Tyrosine

2007
Comparison of bacterial diversity in wheat bran and in the gut of larvae and newly emerged adult of Musca domestica (Diptera: Muscidae) by use of ethidium monoazide reveals bacterial colonization.
    Journal of economic entomology, 2010, Volume: 103, Issue:5

    Topics: Animals; Azides; Bacillus; Bacteria; DNA, Bacterial; Erysipelothrix; Flavobacterium; Genetic Variation; Houseflies; Phylogeny; Proteobacteria; RNA, Ribosomal, 16S; Triticum

2010
Synthesis and site-directed fluorescence labeling of azido proteins using eukaryotic cell-free orthogonal translation systems.
    Analytical biochemistry, 2014, Apr-15, Volume: 451

    Topics: Amino Acyl-tRNA Synthetases; Animals; Azides; Cell-Free System; Electrophoresis, Polyacrylamide Gel; Erythropoietin; Fluorescent Dyes; Glucuronidase; Humans; Phenylalanine; Sf9 Cells; Triticum

2014
Fluorescent labelling of in situ hybridisation probes through the copper-catalysed azide-alkyne cycloaddition reaction.
    Chromosome research : an international journal on the molecular, supramolecular and evolutionary aspects of chromosome biology, 2016, Volume: 24, Issue:3

    Topics: Alkynes; Arabidopsis; Azides; Cell Proliferation; Chromosomes, Plant; Copper; Cycloaddition Reaction; Deoxyuracil Nucleotides; DNA Probes; Hordeum; In Situ Hybridization, Fluorescence; Secale; Triticum

2016
Profiling of the viable bacterial and fungal microbiota in fermented feeds using single-molecule real-time sequencing.
    Journal of animal science, 2020, Feb-01, Volume: 98, Issue:2

    Topics: Animals; Azides; Bacteria; Bioreactors; Fermentation; Fungi; Glycine max; Lactobacillales; Microbiota; Mycobiome; Propidium; Silage; Triticum; Zea mays

2020