ACS Nano 2015-02-24

Force nanoscopy of hydrophobic interactions in the fungal pathogen Candida glabrata.

Sofiane El-Kirat-Chatel, Audrey Beaussart, Sylvie Derclaye, David Alsteens, Soňa Kucharíková, Patrick Van Dijck, Yves F Dufrêne

Index: ACS Nano 9(2) , 1648-55, (2015)

Full Text: HTML

Abstract

Candida glabrata is an opportunistic human fungal pathogen which binds to surfaces mainly through the Epa family of cell adhesion proteins. While some Epa proteins mediate specific lectin-like interactions with human epithelial cells, others promote adhesion and biofilm formation on plastic surfaces via nonspecific interactions that are not yet elucidated. We report the measurement of hydrophobic forces engaged in Epa6-mediated cell adhesion by means of atomic force microscopy (AFM). Using single-cell force spectroscopy, we found that C. glabrata wild-type (WT) cells attach to hydrophobic surfaces via strongly adhesive macromolecular bonds, while mutant cells impaired in Epa6 expression are weakly adhesive. Nanoscale mapping of yeast cells using AFM tips functionalized with hydrophobic groups shows that Epa6 is massively exposed on WT cells and conveys strong hydrophobic properties to the cell surface. Our results demonstrate that Epa6 mediates strong hydrophobic interactions, thereby providing a molecular basis for the ability of this adhesin to drive biofilm formation on abiotic surfaces.


Related Compounds

Related Articles:

Aptamer-based polyvalent ligands for regulated cell attachment on the hydrogel surface.

2015-04-13

[Biomacromolecules 16(4) , 1382-9, (2015)]

Bacteriophage PBC1 and its endolysin as an antimicrobial agent against Bacillus cereus.

2015-04-01

[Appl. Environ. Microbiol. 81(7) , 2274-83, (2015)]

H4 histamine receptors inhibit steroidogenesis and proliferation in Leydig cells.

2014-12-01

[J. Endocrinol. 223(3) , 241-53, (2014)]

Loading and release mechanism of red clover necrotic mosaic virus derived plant viral nanoparticles for drug delivery of doxorubicin.

2014-12-29

[Small 10(24) , 5126-36, (2014)]

Decreased lipogenesis in white adipose tissue contributes to the resistance to high fat diet-induced obesity in phosphatidylethanolamine N-methyltransferase-deficient mice.

2014-10-01

[Biochim. Biophys. Acta 1851(2) , 152-62, (2015)]

More Articles...