Related Experiment Video
Updated: Jan 25, 2026

Visualization of Recombinant DNA and Protein Complexes Using Atomic Force Microscopy
Published on: July 18, 2011
Atomic Force Microscopy Demonstrates that Candida glabrata Uses Three Epa Proteins To Mediate Adhesion to Abiotic
Claire Valotteau1, Valeria Prystopiuk1, Brendan P Cormack2
1Louvain Institute of Biomolecular Science and Technology, Université Catholique de Louvain, Louvain-la-Neuve, Belgium.
Abstract:
The fungal pathogen Candida glabrata can cause both mucosal and disseminated infections. Cell adhesion, a key step in colonization and infection, depends in C. glabrata primarily on the Epa family of cell adhesion proteins. While Epa proteins have been documented to mediate specific adhesion to host glycans, some of them also promote nonspecific adhesion to abiotic surfaces, though this is incompletely understood. Here we address this issue using a combination of genetics and single-cell force measurements. By quantifying the forces driving the attachment of single C. glabrata cells to hydrophobic and hydrophilic substrates, we show that cell adhesion is strongly increased by loss of Sir-mediated silencing. Using a series of mutant strains lacking specific EPA genes, we demonstrate unexpectedly that three major Epa proteins, Epa1, Epa6, and Epa7, primarily contribute to both hydrophilic and hydrophobic interactions, suggesting a broad role for the Epa adhesins in mediating specific and nonspecific adherence and implicating Epa genes in biofilm formation on abiotic surfaces.IMPORTANCECandida glabrata cell wall proteins mediate the attachment of C. glabrata to abiotic surfaces through molecular interactions that are poorly understood. Here, we study the forces engaged in Epa-dependent adhesion using single-cell techniques. Fungal adhesion to hydrophilic and hydrophobic substrates involves mainly three Epa proteins, suggesting a broad role for the Epa adhesins in mediating adherence. These proteins might represent a potential target for the development of innovative antifungal drugs.
Insights
Candida glabrata uses Epa proteins for cell adhesion to surfaces. Three Epa proteins (Epa1, Epa6, Epa7) are key for both specific and nonspecific adherence, impacting fungal infections and biofilm formation.
Area of Science:
- Mycology
- Infectious Diseases
- Biophysics
Background:
- * *Candida glabrata* is a fungal pathogen causing mucosal and disseminated infections.
- * Cell adhesion, mediated by Epa proteins, is crucial for *C. glabrata* colonization and infection.
- * The role of Epa proteins in nonspecific adhesion to abiotic surfaces is not fully understood.
Purpose of the Study:
- * To investigate the molecular mechanisms underlying *C. glabrata* adhesion to abiotic surfaces.
- * To quantify the forces involved in single-cell adhesion using biophysical techniques.
- * To identify specific Epa proteins responsible for both specific and nonspecific adherence.
Main Methods:
- * Genetic manipulation of *C. glabrata* strains to create mutants lacking specific *EPA* genes.
- * Single-cell force measurements to quantify adhesion forces to hydrophobic and hydrophilic substrates.
- * Analysis of the impact of Sir-mediated silencing on cell adhesion.
Main Results:
- * Loss of Sir-mediated silencing significantly increased *C. glabrata* cell adhesion.
- * Epa1, Epa6, and Epa7 were identified as the primary contributors to both hydrophilic and hydrophobic interactions.
- * These findings suggest a broad role for Epa adhesins in mediating diverse adherence phenomena.
Conclusions:
- * Epa proteins play a significant role in both specific and nonspecific adhesion of *C. glabrata*.
- * Epa genes are implicated in biofilm formation on abiotic surfaces.
- * Epa adhesins represent potential therapeutic targets for novel antifungal drug development.
Related Concept Videos
Atomic Force Microscopy
The AFM Probe
The probe is regarded as the heart of any AFM setup and comprises the...
Adhesion
Capillary action is a result of water’s adhesive tendencies. When a narrow...
Atomic Orbitals
Intermolecular Forces
Hydrostatic Pressure Force on a Plane Surface
Hydrostatic Pressure Force on a Curved Surface

