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Updated: Jul 23, 2025

Biomimetic Materials to Characterize Bacteria-host Interactions
Published on: November 16, 2015
Fibronectin-binding molecules of Scedosporium apiospermum: focus on adhesive events
André L S Santos1,2,3, Bianca A Silva4,5, Marcel M L da Cunha6
1Laboratório de Estudos Avançados de Microrganismos Emergentes e Resistentes (LEAMER), Departamento de Microbiologia Geral, Instituto de Microbiologia Paulo de Góes (IMPG), Universidade Federal do Rio de Janeiro (UFRJ), Rio de Janeiro, Brazil. andre@micro.ufrj.br.
Abstract:
Scedosporium apiospermum is a widespread, emerging, and multidrug-resistant filamentous fungus that can cause localized and disseminated infections. The initial step in the infection process involves the adhesion of the fungus to host cells and/or extracellular matrix components. However, the mechanisms of adhesion involving surface molecules in S. apiospermum are not well understood. Previous studies have suggested that the binding of fungal receptors to fibronectin enhances its ability to attach to and infect host cells. The present study investigated the effects of fibronectin on adhesion events of S. apiospermum. The results revealed that conidial cells were able to bind to both immobilized and soluble human fibronectin in a typically dose-dependent manner. Moreover, fibronectin binding was virtually abolished in trypsin-treated conidia, suggesting the proteinaceous nature of the binding site. Western blotting assay, using fibronectin and anti-fibronectin antibody, evidenced 7 polypeptides with molecular masses ranging from 55 to 17 kDa in both conidial and mycelial extracts. Fibronectin-binding molecules were localized by immunofluorescence and immunocytochemistry microscopies at the cell wall and in intracellular compartments of S. apiospermum cells. Furthermore, a possible function for the fibronectin-like molecules of S. apiospermum in the interaction with host lung cells was assessed. Conidia pre-treated with soluble fibronectin showed a significant reduction in adhesion to either epithelial or fibroblast lung cells in a classically dose-dependent manner. Similarly, the pre-treatment of the lung cells with anti-fibronectin antibodies considerably diminished the adhesion. Collectively, the results demonstrated the presence of fibronectin-binding molecules in S. apiospermum cells and their role in adhesive events.
Insights
Scedosporium apiospermum uses fibronectin-binding molecules on its surface for host cell adhesion. Blocking these molecules reduces fungal attachment, revealing a key mechanism in infection processes.
Area of Science:
- Mycology
- Infectious Diseases
- Molecular Biology
Background:
- Scedosporium apiospermum is an emerging, multidrug-resistant fungus causing infections.
- Fungal adhesion to host cells is crucial for infection but poorly understood in S. apiospermum.
- Fibronectin binding is a suspected mechanism enhancing fungal attachment and infection.
Purpose of the Study:
- To investigate the role of fibronectin in the adhesion of S. apiospermum.
- To identify and characterize fibronectin-binding molecules on S. apiospermum.
- To assess the function of these molecules in host cell interactions.
Main Methods:
- Dose-dependent adhesion assays with immobilized and soluble fibronectin.
- Enzymatic (trypsin) and biochemical (Western blotting) analysis of binding sites.
- Immunofluorescence and immunocytochemistry for localizing binding molecules.
- Adhesion inhibition assays using fibronectin and anti-fibronectin antibodies.
Main Results:
- S. apiospermum conidia bind dose-dependently to fibronectin via proteinaceous sites.
- Western blotting identified 7 fibronectin-binding polypeptides (55-17 kDa).
- These molecules are located on the cell wall and intracellularly.
- Fibronectin pre-treatment reduced fungal adhesion to lung cells; anti-fibronectin antibodies also inhibited adhesion.
Conclusions:
- S. apiospermum possesses functional fibronectin-binding molecules.
- These molecules play a significant role in fungal adhesion to host cells.
- Understanding these interactions could inform strategies against S. apiospermum infections.
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