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Anaerobic Bacteria Grow Within Candida Albicans Biofilms and Induce Biofilm Formation in Suspension Cultures

Overview
Journal Curr Biol
Publisher Cell Press
Specialty Biology
Date 2014 Oct 14
PMID 25308076
Citations 99
Authors
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Abstract

The human microbiome contains diverse microorganisms, which share and compete for the same environmental niches. A major microbial growth form in the human body is the biofilm state, where tightly packed bacterial, archaeal, and fungal cells must cooperate and/or compete for resources in order to survive. We examined mixed biofilms composed of the major fungal species of the gut microbiome, Candida albicans, and each of five prevalent bacterial gastrointestinal inhabitants: Bacteroides fragilis, Clostridium perfringens, Escherichia coli, Klebsiella pneumoniae, and Enterococcus faecalis. We observed that biofilms formed by C. albicans provide a hypoxic microenvironment that supports the growth of two anaerobic bacteria, even when cultured in ambient oxic conditions that are normally toxic to the bacteria. We also found that coculture with bacteria in biofilms induces massive gene expression changes in C. albicans, including upregulation of WOR1, which encodes a transcription regulator that controls a phenotypic switch in C. albicans, from the "white" cell type to the "opaque" cell type. Finally, we observed that in suspension cultures, C. perfringens induces aggregation of C. albicans into "mini-biofilms," which allow C. perfringens cells to survive in a normally toxic environment. This work indicates that bacteria and C. albicans interactions modulate the local chemistry of their environment in multiple ways to create niches favorable to their growth and survival.

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References
1.
Martin R, Moran G, Jacobsen I, Heyken A, Domey J, Sullivan D . The Candida albicans-specific gene EED1 encodes a key regulator of hyphal extension. PLoS One. 2011; 6(4):e18394. PMC: 3075580. DOI: 10.1371/journal.pone.0018394. View

2.
Nobile C, Andes D, Nett J, Smith F, Yue F, Phan Q . Critical role of Bcr1-dependent adhesins in C. albicans biofilm formation in vitro and in vivo. PLoS Pathog. 2006; 2(7):e63. PMC: 1487173. DOI: 10.1371/journal.ppat.0020063. View

3.
Khatib R, Riederer K, Ramanathan J, Baran Jr J . Faecal fungal flora in healthy volunteers and inpatients. Mycoses. 2001; 44(5):151-6. DOI: 10.1046/j.1439-0507.2001.00639.x. View

4.
Srikantha T, Borneman A, Daniels K, Pujol C, Wu W, Seringhaus M . TOS9 regulates white-opaque switching in Candida albicans. Eukaryot Cell. 2006; 5(10):1674-87. PMC: 1595353. DOI: 10.1128/EC.00252-06. View

5.
Lohse M, Johnson A . Temporal anatomy of an epigenetic switch in cell programming: the white-opaque transition of C. albicans. Mol Microbiol. 2010; 78(2):331-43. PMC: 3057202. DOI: 10.1111/j.1365-2958.2010.07331.x. View