asparagine and lithium

asparagine has been researched along with lithium in 15 studies

Research

Studies (15)

TimeframeStudies, this research(%)All Research%
pre-199012 (80.00)18.7374
1990's1 (6.67)18.2507
2000's2 (13.33)29.6817
2010's0 (0.00)24.3611
2020's0 (0.00)2.80

Authors

AuthorsStudies
Houpert, Y; Siest, G; Tarallo, P1
VĂ¡radi, A1
Iijima, T; Sato, T1
Yamamoto, M; Young, JL1
Benson, JV1
Kedenburg, CP1
Nunn, PB; Vega, A1
Atkin, GE; Ferdinand, W1
Berridge, BJ; Cummings, JG; Lin, SC; Peters, JH1
Berridge, BJ; Chao, WR; Cummings, JG; Lin, SC; Peters, JH1
Christensen, HN; Vadgama, JV1
Christensen, HN; Handlogten, ME; Kilberg, MS1
Inoue, K; Nakazawa, K; Ohno, Y1
Bode, BP; Pawlik, TM; Souba, WW1
Bush, LA; Cantwell, AM; Di Cera, E; Prasad, S; Shih, P; Xu, H1

Other Studies

15 other study(ies) available for asparagine and lithium

ArticleYear
Amino acid analysis by ion-exchange chromatography using a lithium elution gradient. Influence of methanol concentration and sample pH.
    Journal of chromatography, 1975, Dec-10, Volume: 115, Issue:1

    Topics: Amino Acids; Asparagine; Chromatography, Ion Exchange; Glutamates; Glutamine; Granulocytes; Humans; Hydrogen-Ion Concentration; Ion Exchange Resins; Lithium; Methanol

1975
Thin-layer chromatography on a chromatosheet coated with resin in different ionic forms for the separation of amino acid mixtures containing asparagine and glutamine.
    Journal of chromatography, 1975, Jul-02, Volume: 110, Issue:1

    Topics: Asparagine; Buffers; Chromatography, Ion Exchange; Chromatography, Thin Layer; Citrates; Glutamine; Ion Exchange Resins; Lithium; Mathematics

1975
A modified lithium buffer system for analysis of acidic and neutral amino acids in physiological fluids.
    Journal of biochemistry, 1974, Volume: 75, Issue:5

    Topics: Amino Acids; Asparagine; Blood Chemical Analysis; Body Fluids; Buffers; Citrates; Cystine; Glutamine; Humans; Hydrogen-Ion Concentration; Leucine; Lithium; Methods; Urine

1974
Step-change versus gradient lithium buffers for single-column chromatography of complex amino acid mixtures.
    Journal of chromatography, 1973, Apr-11, Volume: 78, Issue:1

    Topics: Amino Acids; Asparagine; Buffers; Chromatography; Glutamine; Hydrogen-Ion Concentration; Indicator Dilution Techniques; Lithium; Methods

1973
Multiple resins for analysis of amino acids and ninhydrin-positive compounds in hydrolyzates and physiological fluids.
    Analytical biochemistry, 1972, Volume: 50, Issue:2

    Topics: Amino Acids; Asparagine; Buffers; Chromatography, Ion Exchange; Citrates; Glutamine; Humans; Hydrolysis; Ion Exchange Resins; Lithium; Methods; Peptides; Time Factors

1972
A lithium buffer system for accelerated single-column amino acid analysis in physiological fluids.
    Analytical biochemistry, 1971, Volume: 40, Issue:1

    Topics: Amino Acids; Amniotic Fluid; Animals; Asparagine; Autoanalysis; Buffers; Cattle; Chromatography, Ion Exchange; Citrates; Female; Glutamine; Hydrogen-Ion Concentration; Indicators and Reagents; Ion Exchange Resins; Lithium; Methods; Pregnancy; Sheep; Temperature

1971
A lithium buffer system for single-column amino acid analysis.
    Analytical biochemistry, 1969, Volume: 32, Issue:3

    Topics: Amino Acids; Asparagine; Autoanalysis; Buffers; Chromatography, Ion Exchange; Citrates; Glutamine; Hot Temperature; Indicators and Reagents; Lithium; Serine; Threonine

1969
Accelerated amino acid analysis: studies on the use of lithium citrate buffers and the effect of n-propanol, in the analysis of physiological fluids and protein hydrolyzates.
    Analytical biochemistry, 1970, Volume: 38, Issue:2

    Topics: 1-Propanol; Amino Acids; Asparagine; Autoanalysis; Buffers; Chromatography, Ion Exchange; Citrates; Glutamine; Hydrogen-Ion Concentration; Lithium; Methods; Protein Hydrolysates; Time Factors

1970
Column chromatographic analysis of neutral and acidic amino acids using lithium buffers.
    Analytical biochemistry, 1968, Volume: 23, Issue:3

    Topics: Adipates; Amino Acids; Aminobutyrates; Asparagine; Autoanalysis; Buffers; Chromatography, Ion Exchange; Citrulline; Fasting; Glutamine; Humans; Hydrogen-Ion Concentration; Indicators and Reagents; Lithium; Methods; Proline; Spectrophotometry; Time Factors

1968
Amino acids, including asparagine and glutamine, in plasma and urine of normal human subjects.
    Proceedings of the Society for Experimental Biology and Medicine. Society for Experimental Biology and Medicine (New York, N.Y.), 1969, Volume: 131, Issue:1

    Topics: Adult; Amino Acids; Asparagine; Autoanalysis; Buffers; Chromatography; Citrates; Creatinine; Female; Glutamine; Humans; Lithium; Male; Methods; Spectrophotometry; Tryptophan

1969
Comparison of system N in fetal hepatocytes and in related cell lines.
    The Journal of biological chemistry, 1983, May-25, Volume: 258, Issue:10

    Topics: Aging; Amino Acids; Aminoisobutyric Acids; Animals; Asparagine; Biological Transport; Carcinoma, Ehrlich Tumor; Carcinoma, Hepatocellular; Cell Line; Ethylmaleimide; Glutamine; Histidine; Humans; Hydrogen-Ion Concentration; Lithium; Liver; Liver Neoplasms; Sodium

1983
Characteristics of an amino acid transport system in rat liver for glutamine, asparagine, histidine, and closely related analogs.
    The Journal of biological chemistry, 1980, May-10, Volume: 255, Issue:9

    Topics: Amino Acids; Animals; Asparagine; Biological Transport; Cells, Cultured; Choline; Glutamine; Histidine; Hydrogen-Ion Concentration; Kinetics; Lithium; Liver; Male; Rats; Sodium; Structure-Activity Relationship

1980
An asparagine residue regulating conductance through P2X2 receptor/channels.
    European journal of pharmacology, 1998, Apr-17, Volume: 347, Issue:1

    Topics: Animals; Asparagine; Binding Sites; Calcium; Cations; Cesium; Ion Channels; Lithium; Magnesium; Mutagenesis, Site-Directed; Receptors, Purinergic P2; Receptors, Purinergic P2X2; Sodium; Xenopus

1998
Asparagine uptake in rat hepatocytes: resolution of a paradox and insights into substrate-dependent transporter regulation.
    Amino acids, 2001, Volume: 20, Issue:4

    Topics: Amino Acids; Androstadienes; Animals; Asparagine; Binding, Competitive; Biological Transport; Cells, Cultured; Chromones; Dose-Response Relationship, Drug; Glutamine; Hepatocytes; Kinetics; Lithium; Male; Models, Biological; Morpholines; Ornithine Decarboxylase; Phosphatidylinositol 3-Kinases; Phosphoinositide-3 Kinase Inhibitors; Rats; Rats, Sprague-Dawley; Signal Transduction; Sodium; Substrate Specificity; Time Factors; Wortmannin

2001
Residue Asp-189 controls both substrate binding and the monovalent cation specificity of thrombin.
    The Journal of biological chemistry, 2004, Mar-12, Volume: 279, Issue:11

    Topics: Alanine; Allosteric Site; Asparagine; Aspartic Acid; Binding Sites; Cations; Dose-Response Relationship, Drug; Glutamine; Humans; Hydrolysis; Ions; Kinetics; Lithium; Mutagenesis, Site-Directed; Mutation; Protein Binding; Protein Conformation; Rubidium; Serine; Sodium; Substrate Specificity; Thrombin; Trypsin

2004