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Updated: Aug 9, 2025

A Soluble Tetrazolium-Based Reduction Assay to Evaluate the Effect of Antibodies on Candida tropicalis Biofilms
Published on: September 16, 2022
AFM evaluation of a humanized recombinant antibody affecting C. auris cell wall and stability
Tania Vanzolini1, Tomas Di Mambro2, Mauro Magnani1
1Department of Biomolecular Sciences, University of Urbino Carlo Bo Via Saffi 2 61029 Urbino Italy michele.menotta@uniurb.it t.vanzolini@campus.uniurb.it.
Abstract:
Fungal infections are increasingly impacting on the health of the population and particularly on subjects with a compromised immune system. The resistance phenomenon and the rise of new species carrying sometimes intrinsic and multi-drug resistance to the most commonly used antifungal drugs are greatly concerning healthcare organizations. As a result of this situation, there is growing interest in the development of therapeutic agents against pathogenic fungi. In particular, the Candida genus is responsible for severe life-threatening infections and among its species, C. auris is considered an urgent threat by the Center for Disease Control and Prevention, and is one of the three leading causes of morbidity and mortality worldwide. H5K1 is a humanized monoclonal antibody (hmAb) that selectively binds to β-1,3-glucans, vital components of the fungal cell wall. It has been previously demonstrated that it is active against Candida species, especially against C. auris, reaching its greatest potential when combined with commercially available antifungal drugs. Here we used atomic force microscopy (AFM) to assess the effects of H5K1, alone and in combination with fluconazole, caspofungin and amphotericin B, on C. auris cells. Through an extensive exploration we found that H5K1 has a significant role in the perturbation and remodeling of the fungal cell wall that is reflected in the loss of whole cell integrity. Moreover, it contributes substantially to the alterations in terms of chemical composition, stiffness and roughness induced specifically by caspofungin and amphotericin B. In addition to this, we demonstrated that AFM is a valuable technique to evaluate drug-microorganism interaction.
Insights
A new antibody, H5K1, disrupts the fungal cell wall of Candida auris, enhancing antifungal drug effectiveness. Atomic force microscopy confirmed H5K1
Area of Science:
- Mycology
- Immunology
- Biophysics
Background:
- Rising antifungal resistance and emergence of drug-resistant fungal species like Candida auris pose significant global health threats.
- Candida auris is a critical multidrug-resistant pathogen causing life-threatening infections worldwide.
- Development of novel antifungal therapeutic agents is urgently needed.
Purpose of the Study:
- To investigate the effects of humanized monoclonal antibody H5K1, alone and in combination with conventional antifungal drugs, on Candida auris.
- To evaluate the utility of atomic force microscopy (AFM) in assessing drug-microorganism interactions at the cellular level.
Main Methods:
- Atomic Force Microscopy (AFM) was employed to analyze Candida auris cells treated with H5K1, fluconazole, caspofungin, and amphotericin B.
- AFM was used to assess changes in cell wall integrity, chemical composition, stiffness, and roughness.
Main Results:
- H5K1 significantly perturbs and remodels the fungal cell wall, leading to a loss of cell integrity in Candida auris.
- H5K1 enhances the alterations in cell wall properties induced by caspofungin and amphotericin B.
- AFM proved to be an effective technique for visualizing and quantifying drug-induced changes in fungal cells.
Conclusions:
- H5K1 demonstrates potential as a therapeutic agent against Candida auris, particularly when used in combination with existing antifungal drugs.
- AFM is a valuable tool for understanding the mechanisms of antifungal drug action and evaluating novel therapeutic strategies.
- Targeting fungal cell wall components with agents like H5K1 offers a promising avenue for combating resistant fungal infections.

