arginine and Koch's Disease

arginine has been researched along with Koch's Disease in 29 studies

Research

Studies (29)

TimeframeStudies, this research(%)All Research%
pre-19903 (10.34)18.7374
1990's8 (27.59)18.2507
2000's6 (20.69)29.6817
2010's7 (24.14)24.3611
2020's5 (17.24)2.80

Authors

AuthorsStudies
Jo, EK; Kim, JK; Park, EJ1
Anderson, HR; Ogbonna, EC; Schmitz, KR1
Crowther, RR; Qualls, JE1
Battah, B; Bellesi, S; Berisio, R; De Maio, F; Delogu, G; Kramarska, E; Marchionni, F; Palmieri, V; Palucci, I; Papi, M; Sali, M; Salustri, A; Sanguinetti, M1
Cantrell, R; Crowther, RR; Janssen, EM; Lehn, MA; McKell, MC; Qualls, JE; Robillard, MC; Schmidt, SM1
As'ad, S; Bukhari, A; Djaharuddin, I; Rasyid, H; Satriono, R; Sumartini, NK; Taslim, NA; Virani, D1
Ballell, L; Brennich, M; Fraga, H; Goldberg, A; Kazmaier, U; Lelievre, J; Schanda, P; Weinhäupl, K1
Mizrahi, V; Warner, DF1
C Duarte, AR; P S Leitão, MI; Santos, F1
Wu, H; Yang, L1
Bricker, RL; Qualls, JE; Rapovy, SM; Schmidt, SM; Setchell, KD; Zhao, J1
Murray, PJ; Qualls, JE1
Anstey, NM; Kelly, PM; Ralph, AP1
LEVEQUE, J; SALQUAIN, JP1
Siegel, H; Solotorovsky, M; Squibb, RL1
SCHULTZ, J; WEISS, C1
Basso, LA; Canduri, F; de Azevedo, WF; de Oliveira, JS; Dias, MV; Palma, MS; Pereira, JH; Santos, DS1
Gauthier, S; Gros, P; Malo, D; Mullick, A; Tuite, A; Turcotte, K1
Apt, AS; Kähler, AK; Källström, H; Lavebratt, C; Persson, AS; Sánchez, F; Schurr, E1
Bloom, BR; Carroll, D; Chan, J; Flynn, J; Tanaka, K1
Barrera, LF; Kramnik, I; Radzioch, D; Skamene, E1
Akaike, T; Ando, M; Doi, T; Maeda, H; Sato, K; Suga, M1
Lee, AS; Lim, IH; Ling, ML; Tang, LL; Tay, L; Wong, SY1
Arias, M; Barrera, LF; García, LF; París, SC; Rodríguez, JI; Rojas, M; Zabaleta, J1
Pavlov, VA1
Dankert, J; de Haas, PE; Kuijper, EJ; van der Ende, A; van Doorn, HR; van Soolingen, D; Welten, AG1
Cheever, AW; Fuentes, JM; Hesse, M; La Flamme, AC; Modolell, M; Pearce, EJ; Schito, M; Wynn, TA1
Broadnax, LM; Granger, DL; Hibbs, JB1
Hibbs, JB; Lancaster, JR1

Reviews

5 review(s) available for arginine and Koch's Disease

ArticleYear
Itaconate, Arginine, and Gamma-Aminobutyric Acid: A Host Metabolite Triad Protective Against Mycobacterial Infection.
    Frontiers in immunology, 2022, Volume: 13

    Topics: Animals; Arginine; Autophagy; gamma-Aminobutyric Acid; Host-Pathogen Interactions; Humans; Immunity, Innate; Macrophages; Mycobacterium tuberculosis; Succinates; Tuberculosis

2022
Metabolic Regulation of Immune Responses to
    Frontiers in immunology, 2020, Volume: 11

    Topics: Arginine; Humans; Mycobacterium tuberculosis; Tryptophan; Tuberculosis

2020
Arg753Gln Polymorphisms in Toll-Like Receptor 2 Gene are Associated with Tuberculosis Risk: A Meta-Analysis.
    Medical science monitor : international medical journal of experimental and clinical research, 2015, Jul-29, Volume: 21

    Topics: Arginine; Genetic Predisposition to Disease; Glycine; Humans; Polymorphism, Genetic; Toll-Like Receptor 2; Tuberculosis

2015
Immunometabolism within the tuberculosis granuloma: amino acids, hypoxia, and cellular respiration.
    Seminars in immunopathology, 2016, Volume: 38, Issue:2

    Topics: Adaptation, Physiological; Amino Acids; Animals; Arginine; Cell Respiration; Collagen; Energy Metabolism; Granuloma; Host-Pathogen Interactions; Humans; Hypoxia; Lymphocyte Activation; Macrophages; Mycobacterium tuberculosis; Nitric Oxide; Reactive Nitrogen Species; Reactive Oxygen Species; Stress, Physiological; T-Lymphocytes; Tryptophan; Tuberculosis

2016
L-arginine and vitamin D: novel adjunctive immunotherapies in tuberculosis.
    Trends in microbiology, 2008, Volume: 16, Issue:7

    Topics: Adjuvants, Immunologic; Arginine; Cell Line; Humans; Immunotherapy; Macrophage Activation; Macrophages; Mycobacterium tuberculosis; Tuberculosis; Tuberculosis, Pulmonary; Vitamin D

2008

Other Studies

24 other study(ies) available for arginine and Koch's Disease

ArticleYear
Identification of Arginine Phosphorylation in Mycolicibacterium smegmatis.
    Microbiology spectrum, 2022, 10-26, Volume: 10, Issue:5

    Topics: Anti-Bacterial Agents; Arginine; ATP-Dependent Proteases; Bacterial Proteins; Humans; Mycobacterium smegmatis; Mycobacterium tuberculosis; Phosphopeptides; Phosphorylation; Proteome; Tuberculosis

2022
PE_PGRS3 ensures provision of the vital phospholipids cardiolipin and phosphatidylinositols by promoting the interaction between
    Virulence, 2021, Volume: 12, Issue:1

    Topics: Arginine; Bacterial Proteins; Cardiolipins; Humans; Mycobacterium tuberculosis; Phosphates; Phosphatidylinositols; Phospholipids; Tuberculosis

2021
Promotion of Anti-Tuberculosis Macrophage Activity by L-Arginine in the Absence of Nitric Oxide.
    Frontiers in immunology, 2021, Volume: 12

    Topics: Animals; Arginine; Argininosuccinate Lyase; Argininosuccinate Synthase; Cell Survival; Dietary Supplements; Disease Models, Animal; Humans; Macrophage Activation; Macrophages; Mice; Mice, Knockout; Mycobacterium tuberculosis; Nitric Oxide; Primary Cell Culture; RAW 264.7 Cells; Tuberculosis

2021
Energy regulation in newly diagnosed TB with chronic energy deficiency: free fatty acids and RBP4.
    Asia Pacific journal of clinical nutrition, 2017, Volume: 26, Issue:Suppl 1

    Topics: Adolescent; Adult; Arginine; Body Mass Index; Cross-Sectional Studies; Energy Metabolism; Fatty Acids, Nonesterified; Female; Humans; Male; Malnutrition; Middle Aged; Retinol-Binding Proteins, Plasma; Tuberculosis; Young Adult

2017
The antibiotic cyclomarin blocks arginine-phosphate-induced millisecond dynamics in the N-terminal domain of ClpC1 from
    The Journal of biological chemistry, 2018, 06-01, Volume: 293, Issue:22

    Topics: Anti-Bacterial Agents; Arginine; Bacterial Proteins; Cell Death; Crystallography, X-Ray; Gene Expression Regulation, Bacterial; Heat-Shock Proteins; Ion Transport; Mycobacterium tuberculosis; Oligopeptides; Organophosphorus Compounds; Phosphorylation; Protein Conformation; Protein Domains; Tuberculosis

2018
Death of
    Proceedings of the National Academy of Sciences of the United States of America, 2018, 09-25, Volume: 115, Issue:39

    Topics: Arginine; Humans; Mycobacterium tuberculosis; Starvation; Tuberculosis

2018
Properties of Therapeutic Deep Eutectic Solvents of l-Arginine and Ethambutol for Tuberculosis Treatment.
    Molecules (Basel, Switzerland), 2018, Dec-24, Volume: 24, Issue:1

    Topics: Arginine; Caco-2 Cells; Calorimetry, Differential Scanning; Carbon-13 Magnetic Resonance Spectroscopy; Cell Survival; Diffusion; Ethambutol; Humans; Inhibitory Concentration 50; Permeability; Proton Magnetic Resonance Spectroscopy; Solubility; Solvents; Tuberculosis

2018
Differential Requirements for L-Citrulline and L-Arginine during Antimycobacterial Macrophage Activity.
    Journal of immunology (Baltimore, Md. : 1950), 2015, Oct-01, Volume: 195, Issue:7

    Topics: Animals; Arginase; Arginine; Cells, Cultured; Citrulline; Interferon-gamma; Macrophage Activation; Macrophages; Mice; Mice, Inbred C57BL; Mice, Transgenic; Mycobacterium bovis; Nitric Oxide; Nitric Oxide Synthase Type II; Tuberculosis

2015
[TRIALS OF ARGININE IN PULMONARY TUBERCULOUS ALCOHOLICS].
    Gazette medicale de France, 1964, May-25, Volume: 71

    Topics: Alcoholics; Alcoholism; Arginine; Humans; Tuberculosis; Tuberculosis, Pulmonary

1964
PROTEIN METABOLISM IN LIVERS OF CHICKS FED DEFICIENT-TO QUANTITIES OF PROTEIN AND LYSINE AND INFECTED WITH TUBERCULOSIS.
    The Journal of nutrition, 1965, Volume: 86, Issue:2

    Topics: Alanine; Amino Acids; Animals; Arginine; Aspartic Acid; Body Weight; Chickens; Dietary Proteins; DNA; Histidine; Leucine; Liver; Lysine; Organ Size; Poultry; Proteins; Research; RNA; Tuberculosis; Tuberculosis, Avian; Valine

1965
Enzymatic hydrolysis of benzoylarginineamide by normal and tuberculous tissue of rabbits.
    Proceedings of the Society for Experimental Biology and Medicine. Society for Experimental Biology and Medicine (New York, N.Y.), 1949, Volume: 72, Issue:1

    Topics: Animals; Arginine; Hydrolysis; Lagomorpha; Rabbits; Tuberculosis

1949
Structure of shikimate kinase from Mycobacterium tuberculosis reveals the binding of shikimic acid.
    Acta crystallographica. Section D, Biological crystallography, 2004, Volume: 60, Issue:Pt 12 Pt 2

    Topics: Adenosine Diphosphate; Amino Acid Sequence; Arginine; Binding Sites; Catalysis; Chlorides; Chlorine; Cloning, Molecular; Crystallography, X-Ray; Glutamic Acid; Humans; Hydrogen Bonding; Ions; Kinetics; Magnesium; Models, Molecular; Molecular Sequence Data; Mycobacterium tuberculosis; Phosphotransferases (Alcohol Group Acceptor); Protein Binding; Protein Conformation; Protein Structure, Secondary; Shikimic Acid; Substrate Specificity; Tuberculosis

2004
A mutation in the Icsbp1 gene causes susceptibility to infection and a chronic myeloid leukemia-like syndrome in BXH-2 mice.
    The Journal of experimental medicine, 2005, Mar-21, Volume: 201, Issue:6

    Topics: Amino Acid Substitution; Animals; Arginine; Chromosomes, Mammalian; Cysteine; Genetic Predisposition to Disease; Immunologic Deficiency Syndromes; Interferon Regulatory Factors; Interferon-gamma; Interleukin-12; Leukemia, Myeloid; Mice; Mutagenesis, Insertional; Mycobacterium bovis; Point Mutation; Quantitative Trait Loci; Repressor Proteins; Retroviridae; RNA, Messenger; Spleen; Tuberculosis; Virus Replication

2005
A new coding mutation in the Tnf-alpha leader sequence in tuberculosis-sensitive I/St mice causes higher secretion levels of soluble TNF-alpha.
    Genes and immunity, 2005, Volume: 6, Issue:7

    Topics: Amino Acid Substitution; Animals; Arginine; Cell Line; Cytoplasm; Histidine; Humans; Mice; Mice, Mutant Strains; Mutation; Polymorphism, Genetic; Protein Sorting Signals; Protein Transport; Solubility; Tuberculosis; Tumor Necrosis Factor-alpha

2005
Effects of nitric oxide synthase inhibitors on murine infection with Mycobacterium tuberculosis.
    Infection and immunity, 1995, Volume: 63, Issue:2

    Topics: Amino Acid Oxidoreductases; Animals; Arginine; Guanidines; Mice; Mice, Inbred C57BL; Mycobacterium tuberculosis; Nitric Oxide; Nitric Oxide Synthase; omega-N-Methylarginine; Tuberculosis

1995
Nitrite production by macrophages derived from BCG-resistant and -susceptible congenic mouse strains in response to IFN-gamma and infection with BCG.
    Immunology, 1994, Volume: 82, Issue:3

    Topics: Animals; Arginine; Base Sequence; Blotting, Northern; Cell Line; Disease Susceptibility; Female; Interferon-gamma; Macrophages; Male; Mice; Mice, Inbred Strains; Molecular Sequence Data; Mycobacterium bovis; Nitric Oxide; Nitrogen Oxides; omega-N-Methylarginine; Recombinant Proteins; Species Specificity; Tuberculosis

1994
Resistance to nitric oxide in Mycobacterium avium complex and its implication in pathogenesis.
    Infection and immunity, 1993, Volume: 61, Issue:5

    Topics: Animals; Arginine; Drug Resistance, Microbial; Hydrogen-Ion Concentration; Immunity, Cellular; Interferon-gamma; Macrophage Activation; Macrophages, Alveolar; Male; Mycobacterium avium; Nitric Oxide; Nitrites; omega-N-Methylarginine; Phagocytosis; Rats; Rats, Inbred F344; Rats, Wistar; Recombinant Proteins; Respiratory Burst; Superoxides; Tetradecanoylphorbol Acetate; Tuberculosis

1993
Lack of clinical significance for the common arginine-to-leucine substitution at codon 463 of the katG gene in isoniazid-resistant Mycobacterium tuberculosis in Singapore.
    The Journal of infectious diseases, 1997, Volume: 176, Issue:4

    Topics: Antitubercular Agents; Arginine; Bacterial Proteins; Drug Resistance, Microbial; Humans; Isoniazid; Leucine; Molecular Epidemiology; Mutagenesis, Site-Directed; Mycobacterium; Mycobacterium tuberculosis; Peroxidases; Point Mutation; Singapore; Tuberculosis

1997
Inhibition of virulent Mycobacterium tuberculosis by Bcg(r) and Bcg(s) macrophages correlates with nitric oxide production.
    The Journal of infectious diseases, 1997, Volume: 176, Issue:6

    Topics: Animals; Arginine; Carrier Proteins; Cation Transport Proteins; Cell Line; Disease Susceptibility; Immunity, Innate; Interferon-gamma; Iron-Binding Proteins; Macrophage Activation; Macrophages; Membrane Proteins; Mice; Mycobacterium tuberculosis; Nitric Oxide; omega-N-Methylarginine; Tuberculosis; Virulence

1997
[Influence of mycobacterium on adaptive rearrangement in guinea pigs long exposed to polycystic aromatic hydrocarbon-containing agents].
    Problemy tuberkuleza, 1998, Issue:1

    Topics: Adaptation, Biological; Animals; Arginine; Bone Marrow; Cell Membrane; Disease Models, Animal; Guinea Pigs; Liver; Lung; Methionine; Mycobacterium tuberculosis; Polycyclic Aromatic Hydrocarbons; Spleen; Tuberculosis

1998
The susceptibility of Mycobacterium tuberculosis to isoniazid and the Arg-->Leu mutation at codon 463 of katG are not associated.
    Journal of clinical microbiology, 2001, Volume: 39, Issue:4

    Topics: Antitubercular Agents; Arginine; Bacterial Proteins; Codon; Drug Resistance, Microbial; Humans; Isoniazid; Leucine; Mutation; Mycobacterium tuberculosis; Netherlands; Peroxidases; Polymerase Chain Reaction; Sequence Analysis, DNA; Tuberculosis

2001
Differential regulation of nitric oxide synthase-2 and arginase-1 by type 1/type 2 cytokines in vivo: granulomatous pathology is shaped by the pattern of L-arginine metabolism.
    Journal of immunology (Baltimore, Md. : 1950), 2001, Dec-01, Volume: 167, Issue:11

    Topics: Animals; Arginase; Arginine; Cells, Cultured; Disease Models, Animal; Eflornithine; Enzyme Activation; Enzyme Induction; Enzyme Inhibitors; Female; Granuloma; Interleukin-12; Liver; Liver Cirrhosis; Lung Diseases, Parasitic; Macrophage Activation; Macrophages; Mice; Mice, Inbred C57BL; Mice, Knockout; Mycobacterium avium; Nitric Oxide Synthase; Nitric Oxide Synthase Type II; Ornithine Decarboxylase Inhibitors; Ovum; Proline; Schistosomiasis mansoni; Th1 Cells; Th2 Cells; Tuberculosis; Up-Regulation

2001
Urinary nitrate excretion in relation to murine macrophage activation. Influence of dietary L-arginine and oral NG-monomethyl-L-arginine.
    Journal of immunology (Baltimore, Md. : 1950), 1991, Feb-15, Volume: 146, Issue:4

    Topics: Animals; Arginine; Diet; Immunity, Innate; Macrophage Activation; Mice; Mycobacterium bovis; Nitrates; Nitrogen; omega-N-Methylarginine; Oxidation-Reduction; Time Factors; Tuberculosis

1991
EPR demonstration of iron-nitrosyl complex formation by cytotoxic activated macrophages.
    Proceedings of the National Academy of Sciences of the United States of America, 1990, Volume: 87, Issue:3

    Topics: Animals; Arginine; Cells, Cultured; Citrulline; Electron Spin Resonance Spectroscopy; Female; Iron; Lipopolysaccharides; Macrophage Activation; Macrophages; Mice; Mice, Inbred C3H; Mycobacterium bovis; Nitrogen; Nitrogen Oxides; omega-N-Methylarginine; Sulfur; Tuberculosis

1990