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Chemical Compound Review

CHEMBL463686     phenazine-1-carboxylic acid

Synonyms: SureCN122864, AG-E-77685, CBDivE_015095, CHEBI:62412, ANW-53814, ...
 
 
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Disease relevance of Phenazinecarboxylic acid

 

High impact information on Phenazinecarboxylic acid

 

Chemical compound and disease context of Phenazinecarboxylic acid

 

Biological context of Phenazinecarboxylic acid

References

  1. A seven-gene locus for synthesis of phenazine-1-carboxylic acid by Pseudomonas fluorescens 2-79. Mavrodi, D.V., Ksenzenko, V.N., Bonsall, R.F., Cook, R.J., Boronin, A.M., Thomashow, L.S. J. Bacteriol. (1998) [Pubmed]
  2. Endophenazines A-D, new phenazine antibiotics from the arthropod associated endosymbiont Streptomyces anulatus. I. Taxonomy, fermentation, isolation and biological activities. Gebhardt, K., Schimana, J., Krastel, P., Dettner, K., Rheinheimer, J., Zeeck, A., Fiedler, H.P. J. Antibiot. (2002) [Pubmed]
  3. Pyocyanin and its precursor phenazine-1-carboxylic acid increase IL-8 and intercellular adhesion molecule-1 expression in human airway epithelial cells by oxidant-dependent mechanisms. Look, D.C., Stoll, L.L., Romig, S.A., Humlicek, A., Britigan, B.E., Denning, G.M. J. Immunol. (2005) [Pubmed]
  4. Structure and function of the phenazine biosynthesis protein PhzF from Pseudomonas fluorescens 2-79. Parsons, J.F., Song, F., Parsons, L., Calabrese, K., Eisenstein, E., Ladner, J.E. Biochemistry (2004) [Pubmed]
  5. Ascomycete communities in the rhizosphere of field-grown wheat are not affected by introductions of genetically modified Pseudomonas putida WCS358r. Viebahn, M., Doornbos, R., Wernars, K., van Loon, L.C., Smit, E., Bakker, P.A. Environ. Microbiol. (2005) [Pubmed]
  6. Fungal ABC transporters and microbial interactions in natural environments. Schoonbeek, H.J., Raaijmakers, J.M., De Waard, M.A. Mol. Plant Microbe Interact. (2002) [Pubmed]
  7. The purification, crystallization and preliminary structural characterization of PhzF, a key enzyme in the phenazine-biosynthesis pathway from Pseudomonas fluorescens 2-79. Mavrodi, D.V., Bleimling, N., Thomashow, L.S., Blankenfeldt, W. Acta Crystallogr. D Biol. Crystallogr. (2004) [Pubmed]
  8. Quorum Sensing and Phenazines are Involved in Biofilm Formation by Pseudomonas chlororaphis (aureofaciens) Strain 30-84. Maddula, V.S., Zhang, Z., Pierson, E.A., Pierson, L.S. Microb. Ecol. (2006) [Pubmed]
  9. The purification, crystallization and preliminary structural characterization of PhzM, a phenazine-modifying methyltransferase from Pseudomonas aeruginosa. Gohain, N., Thomashow, L.S., Mavrodi, D.V., Blankenfeldt, W. Acta Crystallograph. Sect. F Struct. Biol. Cryst. Commun. (2006) [Pubmed]
  10. Introduction of the phzH gene of Pseudomonas chlororaphis PCL1391 extends the range of biocontrol ability of phenazine-1-carboxylic acid-producing Pseudomonas spp. strains. Chin-A-Woeng, T.F., Thomas-Oates, J.E., Lugtenberg, B.J., Bloemberg, G.V. Mol. Plant Microbe Interact. (2001) [Pubmed]
  11. Chromosomal insertion of phenazine-1-carboxylic acid biosynthetic pathway enhances efficacy of damping-off disease control by Pseudomonas fluorescens. Timms-Wilson, T.M., Ellis, R.J., Renwick, A., Rhodes, D.J., Mavrodi, D.V., Weller, D.M., Thomashow, L.S., Bailey, M.J. Mol. Plant Microbe Interact. (2000) [Pubmed]
  12. Functional analysis of genes for biosynthesis of pyocyanin and phenazine-1-carboxamide from Pseudomonas aeruginosa PAO1. Mavrodi, D.V., Bonsall, R.F., Delaney, S.M., Soule, M.J., Phillips, G., Thomashow, L.S. J. Bacteriol. (2001) [Pubmed]
  13. Inhibition of Salmonella enterica by plant-associated pseudomonads in vitro and on sprouting alfalfa seed. Fett, W.F. J. Food Prot. (2006) [Pubmed]
  14. Cloning and sequencing of a novel human gene which encodes a putative hydroxylase. Iriyama, C., Matsuda, S., Katsumata, R., Hamaguchi, M. J. Hum. Genet. (2001) [Pubmed]
 
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