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Journal Abstract Search


97 related items for PubMed ID: 1315387

  • 1. The relationship between cyclic adenosine 3',5'-monophosphate and morphology in exponential phase Candida albicans.
    Cho T, Hamatake H, Kaminishi H, Hagihara Y, Watanabe K.
    J Med Vet Mycol; 1992; 30(1):35-42. PubMed ID: 1315387
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  • 3. An analysis of the metabolism and cell wall composition of Candida albicans during germ-tube formation.
    Sullivan PA, Yin CY, Molloy C, Templeton MD, Shepherd MG.
    Can J Microbiol; 1983 Nov; 29(11):1514-25. PubMed ID: 6322947
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  • 4. Dibutyryl cyclic AMP-enhanced germ tube formation in exponentially growing Candida albicans cells.
    Niimi M.
    Fungal Genet Biol; 1996 Mar; 20(1):79-83. PubMed ID: 8634947
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  • 9. Reassessment of the effect of glucagon and nucleotides on Candida albicans germ tube formation.
    Zelada A, Castilla R, Passeron S, Cantore ML.
    Cell Mol Biol (Noisy-le-grand); 1996 Jun; 42(4):567-76. PubMed ID: 8828912
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  • 11. Enzymes of N-acetylglucosamine metabolism during germ-tube formation in Candida albicans.
    Gopal P, Sullivan PA, Shepherd MG.
    J Gen Microbiol; 1982 Oct; 128(10):2319-26. PubMed ID: 6296272
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  • 12. Evaluation of Mueller-Hinton-agar as a simple medium for the germ tube production of Candida albicans and Candida dubliniensis.
    Rimek D, Fehse B, Göpel P.
    Mycoses; 2008 May; 51(3):205-8. PubMed ID: 18399901
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  • 19. Identification of Candida albicans with a commercially prepared germ-tube solution.
    Potter L, Papasian CJ.
    Clin Lab Sci; 1991 May; 4(2):121-2. PubMed ID: 10149414
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  • 20. The role of glucose in the pH regulation of germ-tube formation in Candida albicans.
    Pollack JH, Hashimoto T.
    J Gen Microbiol; 1987 Feb; 133(2):415-24. PubMed ID: 3309155
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