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PMID: 15470236 Published · ppublish English Journal Article Research Support, U.S. Gov't, P.H.S.

Transcriptional response of Candida albicans upon internalization by macrophages.

Eukaryotic cell ·Vol. 3 ·No. 5 ·2004-10-00 ·Pages 1076-87

Lorenz MC, Bender JA, Fink GR

Abstract

The opportunistic fungal pathogen Candida albicans is both a benign gut commensal and a frequently fatal systemic pathogen. The interaction of C. albicans with the host's innate immune system is the primary factor in this balance; defects in innate immunity predispose the patient to disseminated candidiasis. Because of the central importance of phagocytic cells in defense against fungal infections, we have investigated the response of C. albicans to phagocytosis by mammalian macrophages using genomic transcript profiling. This analysis reveals a dramatic reprogramming of transcription in C. albicans that occurs in two successive steps. In the early phase cells shift to a starvation mode, including gluconeogenic growth, activation of fatty acid degradation, and downregulation of translation. In a later phase, as hyphal growth enables C. albicans to escape from the macrophage, cells quickly resume glycolytic growth. In addition, there is a substantial nonmetabolic response imbedded in the early phase, including machinery for DNA damage repair, oxidative stress responses, peptide uptake systems, and arginine biosynthesis. Further, a surprising percentage of the genes that respond specifically to macrophage contact have no known homologs, suggesting that the organism has undergone substantial evolutionary adaptations to the commensal or pathogen lifestyle. This transcriptional reprogramming is almost wholly absent in the related, but nonpathogenic, yeast Saccharomyces cerevisiae, suggesting that these large-scale and coordinated changes contribute significantly to the ability of this organism to survive and cause disease in vivo.

MeSH Terms
Animals Candida albicans/genetics,growth & development,metabolism,pathogenicity Cell Line Fungal Proteins/biosynthesis,genetics Gene Expression Profiling Genes, Fungal Gluconeogenesis Glycolysis Glyoxylates/metabolism Macrophages/microbiology Mice Mutation Transcription, Genetic Virulence/genetics
Chemicals
Fungal Proteins Glyoxylates glyoxylic acid
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Lorenz Michael C
Department of Microbiology and Molecular Genetics, The University of Texas Health Science Center, 6431 Fannin, Houston, TX 77030, USA. [email protected]
Bender Jennifer A
Fink Gerald R
References (38)
38 references, click to expand
  1. Efg1p, an essential regulator of morphogenesis of the human pathogen Candida albicans, is a member of a conserved class of bHLH proteins regulating morphogenetic processes in fungi.
    EMBO J. 1997 Apr 15;16(8):1982-91 PMID: 9155024
  2. The clinical significance of positive blood cultures in the 1990s: a prospective comprehensive evaluation of the microbiology, epidemiology, and outcome of bacteremia and fungemia in adults.
    Clin Infect Dis. 1997 Apr;24(4):584-602 PMID: 9145732
  3. Nonfilamentous C. albicans mutants are avirulent.
    Cell. 1997 Sep 5;90(5):939-49 PMID: 9298905
  4. Exploring the metabolic and genetic control of gene expression on a genomic scale.
    Science. 1997 Oct 24;278(5338):680-6 PMID: 9381177
  5. The list of cytoplasmic ribosomal proteins of Saccharomyces cerevisiae.
    Yeast. 1998 Mar 30;14(5):471-7 PMID: 9559554
  6. Genetic organization and sequence analysis of the hypha-specific cell wall protein gene HWP1 of Candida albicans.
    Yeast. 1998 May;14(7):681-6 PMID: 9639315
  7. Early signal transduction induced by Candida albicans in macrophages through shedding of a glycolipid.
    J Infect Dis. 1998 Sep;178(3):792-802 PMID: 9728549
  8. Cluster analysis and display of genome-wide expression patterns.
    Proc Natl Acad Sci U S A. 1998 Dec 8;95(25):14863-8 PMID: 9843981
  9. Transcript profiling in Candida albicans reveals new cellular functions for the transcriptional repressors CaTup1, CaMig1 and CaNrg1.
    Mol Microbiol. 2001 Nov;42(4):981-93 PMID: 11737641
  10. Chromosomal locus that affects pathogenicity of Rhodococcus fascians.
    J Bacteriol. 2002 Feb;184(4):1112-20 PMID: 11807072
  11. Antifungal drug resistance of pathogenic fungi.
    Lancet. 2002 Mar 30;359(9312):1135-44 PMID: 11943280
  12. Epidemiology, treatment and outcome of candidemia: a five-year review at three Canadian hospitals.
    Mycoses. 2002 Jun;45(5-6):141-5 PMID: 12100528
  13. The siderophore iron transporter of Candida albicans (Sit1p/Arn1p) mediates uptake of ferrichrome-type siderophores and is required for epithelial invasion.
    Infect Immun. 2002 Sep;70(9):5246-55 PMID: 12183576
  14. Relationship of the glyoxylate pathway to the pathogenesis of Cryptococcus neoformans.
    Infect Immun. 2002 Oct;70(10):5684-94 PMID: 12228298
  15. Transcription profiling of Candida albicans cells undergoing the yeast-to-hyphal transition.
    Mol Biol Cell. 2002 Oct;13(10):3452-65 PMID: 12388749
  16. Isocitrate lyase is essential for pathogenicity of the fungus Leptosphaeria maculans to canola (Brassica napus).
    Eukaryot Cell. 2002 Oct;1(5):719-24 PMID: 12455691
  17. Stage-specific gene expression of Candida albicans in human blood.
    Mol Microbiol. 2003 Mar;47(6):1523-43 PMID: 12622810
  18. The glyoxylate cycle is required for temporal regulation of virulence by the plant pathogenic fungus Magnaporthe grisea.
    Mol Microbiol. 2003 Mar;47(6):1601-12 PMID: 12622815
  19. Stress-induced gene expression in Candida albicans: absence of a general stress response.
    Mol Biol Cell. 2003 Apr;14(4):1460-7 PMID: 12686601
  20. Management and outcome of bloodstream infections due to Candida species in England and Wales.
    J Hosp Infect. 2003 May;54(1):18-24 PMID: 12767842
  21. Phagocytosis by neutrophils induces an amino acid deprivation response in Saccharomyces cerevisiae and Candida albicans.
    Proc Natl Acad Sci U S A. 2003 Sep 16;100(19):11007-12 PMID: 12958213
  22. Identification and characterization of a Candida albicans mating pheromone.
    Mol Cell Biol. 2003 Nov;23(22):8189-201 PMID: 14585977
  23. Evolution of a combinatorial transcriptional circuit: a case study in yeasts.
    Cell. 2003 Nov 14;115(4):389-99 PMID: 14622594
  24. Isolation of the Candida albicans gene for orotidine-5'-phosphate decarboxylase by complementation of S. cerevisiae ura3 and E. coli pyrF mutations.
    Mol Gen Genet. 1984;198(2):179-82 PMID: 6394964
  25. Getting started with yeast.
    Methods Enzymol. 1991;194:3-21 PMID: 2005794
  26. Futile cycles in Saccharomyces cerevisiae strains expressing the gluconeogenic enzymes during growth on glucose.
    Proc Natl Acad Sci U S A. 1993 Feb 15;90(4):1290-4 PMID: 8381962
  27. Cloning and characterization of ECE1, a gene expressed in association with cell elongation of the dimorphic pathogen Candida albicans.
    Infect Immun. 1993 Sep;61(9):3648-55 PMID: 8359888
  28. A high-affinity iron permease essential for Candida albicans virulence.
    Science. 2000 May 12;288(5468):1062-4 PMID: 10807578
  29. Characterization of Escherichia coli DNA lesions generated within J774 macrophages.
    J Bacteriol. 2000 Sep;182(18):5225-30 PMID: 10960109
  30. Persistence of Mycobacterium tuberculosis in macrophages and mice requires the glyoxylate shunt enzyme isocitrate lyase.
    Nature. 2000 Aug 17;406(6797):735-8 PMID: 10963599
  31. Global and specific translational regulation in the genomic response of Saccharomyces cerevisiae to a rapid transfer from a fermentable to a nonfermentable carbon source.
    Mol Cell Biol. 2001 Feb;21(3):916-27 PMID: 11154278
  32. The glyoxylate cycle is required for fungal virulence.
    Nature. 2001 Jul 5;412(6842):83-6 PMID: 11452311
  33. Induction of pseudohyphal growth by overexpression of PHD1, a Saccharomyces cerevisiae gene related to transcriptional regulators of fungal development.
    Mol Cell Biol. 1994 Mar;14(3):2100-12 PMID: 8114741
  34. Candida albicans stimulates arachidonic acid liberation from alveolar macrophages through alpha-mannan and beta-glucan cell wall components.
    Infect Immun. 1994 Aug;62(8):3138-45 PMID: 8039882
  35. Suppression of hyphal formation in Candida albicans by mutation of a STE12 homolog.
    Science. 1994 Dec 9;266(5191):1723-6 PMID: 7992058
  36. Signal transduction through homologs of the Ste20p and Ste7p protein kinases can trigger hyphal formation in the pathogenic fungus Candida albicans.
    Proc Natl Acad Sci U S A. 1996 Nov 12;93(23):13217-22 PMID: 8917571
  37. Candida albicans strains heterozygous and homozygous for mutations in mitogen-activated protein kinase signaling components have defects in hyphal development.
    Proc Natl Acad Sci U S A. 1996 Nov 12;93(23):13223-8 PMID: 8917572
  38. Control of filament formation in Candida albicans by the transcriptional repressor TUP1.
    Science. 1997 Jul 4;277(5322):105-9 PMID: 9204892
Article Info
Journal
Eukaryotic cell
Abbr.
Eukaryot Cell
ISSN
1535-9778
Published
2004-10-00
Pages
1076-87
Language
English
Region
United States
NLM ID
101130731
PMCID
PMC522606
Subset
IM
Grants
NIGMS NIH HHS · R01 GM040266 · United States
NIGMS NIH HHS · GM40266 · United States
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